Notification method and apparatus for channel quality indicator and modulation and coding scheme

ABSTRACT

The present invention discloses a notification method for a CQI and a modulation and coding scheme. The method includes: learning, by a terminal, a first CQI index according to a first CQI table; sending the first CQI index to a base station; receiving, by the base station, the first CQI index sent by the terminal UE; determining a first MCS index according to the first CQI table, a first MCS table, and the received first CQI index; sending the determined first MCS index to the UE; receiving, by the terminal, the first MCS index sent by the base station; and determining a modulation order and a code block size according to the first MCS table and the received first MCS index; where the first CQI table includes entries in which modulation schemes are higher than 64 QAM.

CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of International Patent Application No. PCT/CN2013/084346, filed on Sep. 26, 2013, which claims priority to International Patent Application No. PCT/CN2013/077023, filed on Jun. 8, 2013, both of which are hereby incorporated by reference in their entireties.

TECHNICAL FIELD

The present invention relates to the field of communications, and in particular, to a notification method and apparatus for a channel quality indicator and a modulation and coding scheme.

BACKGROUND

Currently, in a Long Term Evolution (LTE) system, an adaptive procedure for a physical downlink shared channel (PDSCH) is as follows: User equipment (UE) estimates channel information used for measuring channel state information (CSI); the UE calculates a signal to interference plus noise ratio (SINR) by using the channel information and based on an optimal rank indication (RI) and/or a precoding matrix indication (PMI); and the UE obtains a corresponding channel quality indicator (CQI) according to the SINR, and reports a CQI value to a base station. The base station allocates a modulation and coding scheme (MCS) to the UE according to the CQI value reported by the UE and a network condition, where the MCS is used for indicating a modulation scheme and a coding scheme that are currently used by the PDSCH.

In a hotspot scenario, for example, in a relay (Relay) scenario or an LTE hotspot improvements (LTE-Hi) scenario, UE requires a modulation scheme higher than 64 quadrature amplitude modulation (QAM). However, due to a limitation in the prior art, a maximum CQI value is 15, and a modulation scheme corresponding to the CQI value is 64 QAM; as a result, the UE cannot select a modulation scheme higher than 64 QAM, thereby affecting system performance. Similarly, a base station cannot allocate a modulation scheme higher than 64 QAM to the UE.

SUMMARY

Embodiments of the present invention provide a notification method and apparatus for a channel quality indicator and a modulation and coding scheme, so as to support UE and a base station to select a modulation scheme higher than 64 QAM, thereby improving system performance.

To achieve the foregoing objective, the following technical solutions are used in the embodiments of the present invention:

According to a first aspect, a notification method for a CQI is provided, including:

learning a first CQI index according to an acquired first CQI table; and

sending the first CQI index to a base station, so that the base station determines a first modulation and coding scheme MCS index according to the first CQI index;

where the first CQI table includes:

entries in which modulation schemes are higher than 64 quadrature amplitude modulation QAM; and

at least one entry in which a modulation scheme is quadrature phase shift keying QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in entries in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

With reference to the first aspect, in a first possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second CQI table includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

With reference to the first aspect, in a second possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second CQI table includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

With reference to the first aspect or the first two possible implementation manners, in a third possible implementation manner, the first CQI table further includes:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

With reference to the third possible implementation manner, in a fourth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

With reference to the first aspect, in a fifth possible implementation manner, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.

With reference to the first aspect, in a sixth possible implementation manner, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

With reference to the first aspect, in a seventh possible implementation manner, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to the first aspect, in an eighth possible implementation manner, the first CQI table includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to any one of the sixth to the eighth possible implementation manners, in a ninth possible implementation manner, the constant is less than or equal to a first threshold.

With reference to the first aspect, in a tenth possible implementation manner, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

With reference to the sixth possible implementation manner or the tenth possible implementation manner, in an eleventh possible implementation manner, X=3.

With reference to the ninth possible implementation manner or the tenth possible implementation manner, in a twelfth possible implementation manner, the first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

With reference to the first aspect or any one of the first twelve possible implementation manners, in a thirteenth possible implementation manner, a value range of a CQI index in the first CQI table is the same as a value range of a CQI index in the second CQI table.

With reference to a second aspect, a notification method for an MCS is provided, including:

receiving a first channel quality indicator CQI index sent by terminal UE, where the first CQI index is determined by the UE according to an acquired first CQI table;

determining a first MCS index according to the first CQI table, a first MCS table, and the received first CQI index; and

sending the determined first MCS index to the UE;

where the first CQI table includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in the second CQI table include only QPSK, 16 QAM, and 64 QAM; and

the first MCS table includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a second combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the second combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

With reference to the second aspect, in a first possible implementation manner, the determining a first MCS index according to the acquired first CQI table, the determined first MCS table, and the received first CQI index includes:

determining a first TBS index and the first MCS index according to the first PRB quantity, the first CQI table, the first MCS table, and the received first CQI index, where:

the first PRB quantity is a PRB quantity allocated by a base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient;

a first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

With reference to the first possible implementation manner, in a second possible implementation manner, the determining a first TBS index according to the first CQI table, a first PRB quantity, a first TBS table, and the received first CQI index includes:

determining, according to the first CQI table and the received first CQI index, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index;

learning, according to the first PRB quantity and the first spectrum efficiency, a first transport block size transmitted to the UE; and

obtaining, according to the first TBS table, the first TBS index that corresponds to the first transport block size and the first PRB quantity in the first TBS table.

With reference to the second aspect or either of the first two possible implementation manners, in a third possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second CQI table includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

With reference to the second aspect or either of the first two possible implementation manners, in a fourth possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second CQI table includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

With reference to the second aspect or any one of the first four possible implementation manners, in a fifth possible implementation manner, the first CQI table further includes:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

With reference to the fifth possible implementation manner, in a sixth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

With reference to the second aspect or any one of the first six possible implementation manners, in a seventh possible implementation manner, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all the entries in which the modulation schemes are 64 QAM in the second CQI table.

With reference to the second aspect, in an eighth possible implementation manner, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

With reference to the second aspect, in a ninth possible implementation manner, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to the second aspect, in a tenth possible implementation manner, the first CQI table includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to any one of the eighth to the tenth possible implementation manners, in an eleventh possible implementation manner, the constant is less than or equal to a first threshold.

With reference to the second aspect, in a twelfth possible implementation manner, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

With reference to the eighth possible implementation manner or the twelfth possible implementation manner, in a thirteenth possible implementation manner, X=3.

With reference to either of the eleventh and the twelfth possible implementation manners, in a fourteenth possible implementation manner, the first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

With reference to the second aspect or any one of the first fourteen possible implementation manners, in a fifteenth possible implementation manner, a value range of a CQI index in the first CQI table is the same as a value range of a CQI index in the second CQI table.

With reference to the second aspect or either of the first two possible implementation manners, in a sixteenth possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second MCS table includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

With reference to the second aspect or either of the first two possible implementation manners, in a seventeenth possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second MCS table includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

With reference to the second aspect or any one of the first, the second, the sixteenth, and the seventeenth possible implementation manners, in an eighteenth possible implementation manner, the first MCS table further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

With reference to the eighteenth possible implementation manner, in a nineteenth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

With reference to the eighteenth or the nineteenth possible implementation manner, in a twentieth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

With reference to any one of the sixteenth to the twentieth possible implementation manners, in a twenty-first possible implementation manner, a value range of an MCS index in the first MCS table is the same as a value range of an MCS index in the second MCS table.

With reference to a third aspect, a notification method for an MCS is provided, including:

receiving, by a base station, a first CQI index, where the first CQI index is determined by UE according to an acquired first CQI table;

determining a first MCS index according to the first CQI table, a first MCS table, and the received first CQI index; and sending the determined first MCS index to the UE;

where the first CQI table includes: entries in which modulation schemes are higher than 64 QAM, where an entry in the first CQI table refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table; and

the first MCS table includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

With reference to the third aspect, in a first possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second MCS table includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

With reference to the third aspect, in a second possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second MCS table includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

With reference to the third aspect or either of the first two possible implementation manners, in a third possible implementation manner, the first MCS table further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

With reference to the third possible implementation manner, in a fourth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

With reference to the third or the fourth possible implementation manner, in a fifth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

With reference to the third aspect or the first five possible implementation manners, in a sixth possible implementation manner, a value range of an MCS index in the first MCS table is the same as a value range of an MCS index in the second MCS table.

With reference to a fourth aspect, a notification method for an MCS is provided, including:

receiving a first MCS index sent by a base station, where the first MCS index is determined by the base station according to a first MCS table; and

determining a modulation order and a code block size according to the first MCS table and the received first MCS index;

where the first MCS table includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

With reference to the fourth aspect, in a first possible implementation manner, the determining a modulation order and a code block size according to the first MCS table and the received first MCS index includes:

determining a first TBS index and the modulation order according to the first MCS table and the received first MCS index; and

determining the code block size according to the first TBS index, a first PRB quantity, and a first TBS table, where:

the first PRB quantity is a PRB quantity allocated by the base station to UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to UE and a specific coefficient;

the first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

With reference to the fourth aspect or the first possible implementation manner, in a second possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second MCS table includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

With reference to the fourth aspect or the first possible implementation manner, in a third possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second MCS table includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

With reference to the fourth aspect or the first three possible implementation manners, in a fourth possible implementation manner, the first MCS table further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

With reference to the fourth possible implementation manner, in a fifth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

With reference to the fourth or the fifth possible implementation manner, in a sixth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

With reference to the fourth aspect or any one of the first six possible implementation manners, in a seventh possible implementation manner, a value range of an MCS index in the first MCS table is the same as a value range of an MCS index in the second MCS table.

With reference to a fifth aspect, a notification apparatus for a CQI is provided, including:

an acquiring module, configured to acquire a first CQI table;

a first acquiring module, configured to learn a first CQI index according to the first CQI table acquired by the acquiring module; and

a sending module, configured to send the first CQI index acquired by the first acquiring module to a base station, so that the base station determines a first modulation and coding scheme MCS index according to the first CQI index;

where the first CQI table acquired by the acquiring module includes:

entries in which modulation schemes are higher than 64 quadrature amplitude modulation QAM; and

at least one entry in which a modulation scheme is quadrature phase shift keying QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in entries in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

With reference to the fifth aspect, in a first possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second CQI table in the first CQI table acquired by the acquiring module includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

With reference to the fifth aspect, in a second possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second CQI table in the first CQI table acquired by the acquiring module includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

With reference to the fifth aspect or the first two possible implementation manners, in a third possible implementation manner, the first CQI table acquired by the acquiring module further includes:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

With reference to the third possible implementation manner, in a fourth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

With reference to the fifth aspect, in a fifth possible implementation manner, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.

With reference to the fifth aspect, in a sixth possible implementation manner, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

With reference to the fifth aspect, in a seventh possible implementation manner, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to the fifth aspect, in an eighth possible implementation manner, the first CQI table acquired by the acquiring module includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to any one of the sixth to the eighth possible implementation manners, in a ninth possible implementation manner, the constant is less than or equal to a first threshold.

With reference to the fifth aspect, in a tenth possible implementation manner, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table acquired by the acquiring module includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

With reference to the sixth possible implementation manner or the tenth possible implementation manner, in an eleventh possible implementation manner, X=3.

With reference to the ninth possible implementation manner or the tenth possible implementation manner, in a twelfth possible implementation manner, the first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

With reference to the fifth aspect or any one of the first twelve possible implementation manners, in a thirteenth possible implementation manner, a value range of a CQI index in the first CQI table acquired by the acquiring module is the same as a value range of a CQI index in the second CQI table.

With reference to a sixth aspect, a notification apparatus for an MCS is provided, including:

an acquiring module, configured to acquire a first CQI table and a first MCS table; a receiving module, configured to receive a first channel quality indicator CQI index sent by terminal UE, where the first CQI index is determined by the UE according to the first CQI table;

a determining module, configured to determine a first MCS index according to the first CQI table acquired by the acquiring module, the first MCS table acquired by the acquiring module, and the first CQI index received by the receiving module; and

a sending module, configured to send the determined first MCS index to the UE;

where the first CQI table acquired by the acquiring module includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in the second CQI table include only QPSK, 16 QAM, and 64 QAM; and

the first MCS table acquired by the acquiring module includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a second combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the second combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

With reference to the sixth aspect, in a first possible implementation manner, the determining module is specifically configured to:

determine a first TBS index and the first MCS index according to an acquired first PRB quantity, the first CQI table acquired by the acquiring module, the first MCS table acquired by the acquiring module, and the received first CQI index, where:

the first PRB quantity is a PRB quantity allocated by a base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient;

a first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

With reference to the first possible implementation manner, in a second possible implementation manner, the determining module includes:

a first determining submodule, configured to determine, according to the first CQI table acquired by the acquiring module and the received first CQI index, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index; and

a second determining submodule, configured to learn, according to the first PRB quantity and the first spectrum efficiency, a first transport block size transmitted to the UE; and

obtain, according to the first TBS table, the first TBS index that corresponds to the first transport block size and the first PRB quantity in the first TBS table.

With reference to the sixth aspect or either of the first two possible implementation manners, in a third possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second CQI table includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

With reference to the sixth aspect or either of the first two possible implementation manners, in a fourth possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second CQI table in the first CQI table acquired by the acquiring module includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

With reference to the sixth aspect or any one of the first four possible implementation manners, in a fifth possible implementation manner, the first CQI table acquired by the acquiring module further includes:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

With reference to the fifth possible implementation manner, in a sixth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

With reference to the sixth aspect or any one of the first six possible implementation manners, in a seventh possible implementation manner, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module is equal to a spectrum efficiency in an entry corresponding to a maximum CQI index of all the entries in which the modulation schemes are 64 QAM in the second CQI table.

With reference to the sixth aspect, in an eighth possible implementation manner, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

With reference to the sixth aspect, in a ninth possible implementation manner, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to the sixth aspect, in a tenth possible implementation manner, the first CQI table acquired by the acquiring module includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

With reference to any one of the eighth to the tenth possible implementation manners, in an eleventh possible implementation manner, the constant is less than or equal to a first threshold.

With reference to the sixth aspect, in a twelfth possible implementation manner, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table acquired by the acquiring module includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

With reference to the eighth possible implementation manner or the twelfth possible implementation manner, in a thirteenth possible implementation manner, X=3.

With reference to either of the eleventh to the twelfth possible implementation manners, in a fourteenth possible implementation manner, the first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

With reference to the sixth aspect or any one of the first fourteen possible implementation manners, in a fifteenth possible implementation manner, a value range of a CQI index in the first CQI table acquired by the acquiring module is the same as a value range of a CQI index in the second CQI table.

With reference to the sixth aspect or either of the first two possible implementation manners, in a sixteenth possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second MCS table in the first MCS table acquired by the acquiring module includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

With reference to the sixth aspect or either of the first two possible implementation manners, in a seventeenth possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first MCS table acquired by the acquiring module includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

With reference to the sixth aspect or any one of the first, the second, the sixteenth, and the seventeenth possible implementation manners, in an eighteenth possible implementation manner, the first MCS table acquired by the acquiring module further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

With reference to the eighteenth possible implementation manner, in a nineteenth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

With reference to the eighteenth or the nineteenth possible implementation manner, in a twentieth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table acquired by the acquiring module is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

With reference to any one of the sixteenth to the twentieth possible implementation manners, in a twenty-first possible implementation manner, a value range of an MCS index in the first MCS table acquired by the acquiring module is the same as a value range of an MCS index in the second MCS table.

With reference to a seventh aspect, a notification apparatus for an MCS is provided, including:

an acquiring module, configured to acquire a first CQI table and a first MCS table;

a receiving module, configured to receive, by a base station, a first CQI index, where the first CQI index is determined by UE according to the first CQI table;

a determining module, configured to determine a first MCS index according to the first CQI table acquired by the acquiring module, the first MCS table acquired by the acquiring module, and the first CQI index received by the receiving module; and

a sending module, configured to send the first MCS index determined by the determining module to the UE;

where the first CQI table acquired by the acquiring module includes: entries in which modulation schemes are higher than 64 QAM, where an entry in the first CQI table acquired by the acquiring module refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table acquired by the acquiring module; and

the first MCS table acquired by the acquiring module includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

With reference to the seventh aspect, in a first possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second MCS table includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

With reference to the seventh aspect, in a second possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first MCS table acquired by the acquiring module includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

With reference to the seventh aspect or either of the first two possible implementation manners, in a third possible implementation manner, the first MCS table acquired by the acquiring module further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

With reference to the third possible implementation manner, in a fourth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

With reference to the third or the fourth possible implementation manner, in a fifth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table acquired by the acquiring module is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

With reference to the seventh aspect or the first five possible implementation manners, in a sixth possible implementation manner, a value range of an MCS index in the first MCS table acquired by the acquiring module is the same as a value range of an MCS index in the second MCS table.

With reference to an eighth aspect, a notification apparatus for an MCS is provided, including:

an acquiring module, configured to acquire a first MCS table;

a receiving module, configured to receive a first MCS index sent by a base station, where the first MCS index is determined by the base station according to the first MCS table acquired by the acquiring module; and

a determining module, configured to determine a modulation order and a code block size according to the first MCS table acquired by the acquiring module and the first MCS index received by the receiving module;

where the first MCS table acquired by the acquiring module includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

With reference to the eighth aspect, in a first possible implementation manner, the determining module includes:

a first determining submodule, configured to determine a first TBS index and the modulation order according to the first MCS table acquired by the acquiring module and the received first MCS index; and

a second determining submodule, configured to determine the code block size according to the first TBS index, a first PRB quantity, and a first TBS table, where:

the first PRB quantity is a PRB quantity allocated by the base station to UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to UE and a specific coefficient;

the first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

With reference to the eighth aspect or the first possible implementation manner, in a second possible implementation manner, the at least one entry in which the modulation scheme is QPSK in the second MCS table includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

With reference to the eighth aspect or the first possible implementation manner, in a third possible implementation manner, the at least one entry in which the modulation scheme is 16 QAM in the second MCS table includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

With reference to the eighth aspect or any one of the first three possible implementation manners, in a fourth possible implementation manner, the first MCS table acquired by the acquiring module further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

With reference to the fourth possible implementation manner, in a fifth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

With reference to the fourth or the fifth possible implementation manner, in a sixth possible implementation manner, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table acquired by the acquiring module is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

With reference to the eighth aspect or the first six possible implementation manners, in a seventh possible implementation manner, a value range of an MCS index in the first MCS table acquired by the acquiring module is the same as a value range of an MCS index in the second MCS table.

With reference to a ninth aspect, a notification apparatus for a channel quality indicator CQI is provided, including:

a memory and a processor connected to the memory, and further including a transmitter, where

the memory stores a set of program code, and the processor is configured to call the program code stored in the memory to perform the method according to the first aspect or any one of the possible implementation manners of the first aspect; and

the sender is configured to send a first CQI index that is obtained by calling, by the processor, the program code stored in the memory to perform the method according to the first aspect or any one of the possible implementation manners of the first aspect.

With reference to a tenth aspect, a notification apparatus for a modulation and coding scheme MCS is provided, including:

a memory and a processor connected to the memory, and further including a sender and a receiver, where

the memory stores a set of program code, and the processor is configured to call the program code stored in the memory to perform the method according to the second aspect or any one of the possible implementation manners of the second aspect; and

the receiver is configured to receive a first CQI index sent by UE; and the sender is configured to send a first MCS index that is obtained by calling, by the processor, the program code stored in the memory to perform the method according to the second aspect or any one of the possible implementation manners of the second aspect.

With reference to an eleventh aspect, a notification apparatus for a modulation and coding scheme MCS is provided, including a memory and a processor connected to the memory, and further including a sender and a receiver, where

the memory stores a set of program code, and the processor is configured to call the program code stored in the memory to perform the method according to the third aspect or any one of the possible implementation manners of the third aspect; and

the receiver is configured to receive a first CQI index sent by UE; and the sender is configured to send a first MCS index that is obtained by calling, by the processor, the program code stored in the memory to perform the method according to the third aspect or any one of the possible implementation manners of the third aspect.

With reference to a twelfth aspect, a notification apparatus for a modulation and coding scheme MCS is provided, including a memory and a processor connected to the memory, and further including a receiver, where

the memory stores a set of program code, and the processor is configured to call the program code stored in the memory to perform the method according to the fourth aspect or any one of the possible implementation manners of the fourth aspect; and

the receiver is configured to receive a first MCS index sent by a base station.

The present invention provides a notification method and apparatus for a channel quality indicator and a modulation and coding scheme, which supports UE in selecting a modulation scheme higher than 64 QAM and notifying a base station by using a method of sending a CQI index, and meanwhile supports the base station in selecting a modulation scheme higher than 64 QAM and notifying the UE by using a method of sending an MCS index. Using the modulation scheme higher than 64 QAM can provide higher quantization accuracy for an area with a high signal-to-noise ratio, thereby improving system performance.

The present invention provides a notification method and apparatus for a channel quality indicator and a modulation and coding scheme, which can further support UE in selecting a low spectrum efficiency and notifying a base station by using a method of sending a CQI index, and meanwhile can support the base station in selecting a small transport block size and notifying the UE by using a method of sending an MCS index, so as to ensure that the UE can also adapt to an unexpected low signal-to-noise ratio scenario when the UE uses a high-order modulation scheme, that is, to ensure that the UE can adapt to a dramatic change of a signal-to-noise ratio.

BRIEF DESCRIPTION OF DRAWINGS

To describe the technical solutions in the embodiments of the present invention more clearly, the following briefly introduces the accompanying drawings required for describing the embodiments. Apparently, the accompanying drawings in the following description show merely some embodiments of the present invention, and persons of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.

FIG. 1 is a schematic diagram of a notification method for a CQI according to an embodiment of the present invention;

FIG. 2 is a schematic diagram of a notification method for an MCS according to an embodiment of the present invention;

FIG. 3 is a schematic diagram of another notification method for an MCS according to an embodiment of the present invention;

FIG. 4 is a schematic diagram of another notification method for an MCS according to an embodiment of the present invention;

FIG. 5 is a schematic diagram of a notification apparatus for a CQI according to an embodiment of the present invention;

FIG. 6 is a schematic diagram of a notification apparatus for an MCS according to an embodiment of the present invention;

FIG. 7 is a schematic diagram of another notification apparatus for an MCS according to an embodiment of the present invention;

FIG. 8 is a schematic diagram of another notification apparatus for an MCS according to an embodiment of the present invention;

FIG. 9 is a schematic diagram of another notification apparatus for a CQI according to an embodiment of the present invention;

FIG. 10 is a schematic diagram of another notification apparatus for an MCS according to an embodiment of the present invention;

FIG. 11 is a schematic diagram of another notification apparatus for an MCS according to an embodiment of the present invention; and

FIG. 12 is a schematic diagram of another notification apparatus for an MCS according to an embodiment of the present invention.

DESCRIPTION OF EMBODIMENTS

The following clearly describes the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are merely some but not all of the embodiments of the present invention. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

An adaptive procedure for a physical downlink shared channel (PDSCH, Physical Downlink Shared Channel) is as follows:

First, user equipment (UE, User Equipment) estimates channel information used for measuring channel state information (CSI, Channel State Information); second, the UE calculates a signal to interference plus noise ratio (SINR, Signal to Interference plus Noise Ratio) by using the channel information and based on an optimal rank indication (RI, Rank Indication) and/or a precoding matrix indication (PMI, Precoding Matrix Indication); and then, the UE obtains a corresponding channel quality indicator (CQI, Channel Quality Indicator) according to the SINR, and reports a CQI value to a base station.

In addition, in the present invention, a modulation order corresponds to a modulation scheme. Exemplarily, if a modulation scheme is quadrature phase shift keying (QPSK, Quadrature Phase Shift Keying), a modulation order is 2; if a modulation scheme is 16 QAM, a modulation order is 4; if a modulation scheme is 64 QAM, a modulation order is 6; if a modulation scheme is 256 QAM, a modulation order is 8.

The following describes in detail a notification method for a CQI provided by an embodiment of the present invention with reference to the accompanying drawings.

As shown in FIG. 1, steps of the notification method for a CQI are as follows:

S101: UE Learns a First CQI Index According to an Acquired First CQI Table.

The first CQI table may be predefined in a protocol, for example, preset by the UE according to protocol specifications, or pre-stored by the UE; or may be selected by the UE from at least two predefined tables according to a downlink channel state; or may be notified by a base station to the UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table. A first CQI table is used for describing a mapping relationship between a CQI index and an entry. In this embodiment of the present invention, the mapping relationship in the CQI table is merely an example given for the convenience of understanding the present invention, and a representation form of the CQI table in the present invention includes, but is not limited to, the example. That is, the CQI table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between a CQI index and an entry can be reflected.

Specifically, the UE determines a first spectrum efficiency according to a measured first SINR, and then acquires, according to the first spectrum efficiency and the first CQI table, a first CQI index corresponding to the first spectrum efficiency, where the first CQI table is pre-stored by the UE.

The first CQI table may include:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK may include a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in entries in the second CQI table may include only QPSK, 16 QAM, and 64 QAM.

That is, the first CQI table includes the entries in which the modulation schemes are higher than 64 QAM; the first CQI table may further include the at least one entry in which the modulation scheme is QPSK in the second CQI table, and at least one entry in which modulation schemes are QPSK in the first CQI table cannot only be the N entries that are corresponding to the consecutive maximum CQI indices and of the entries in which the modulation schemes are QPSK in the second CQI table, where N may be equal to 3 or N may be a positive integer less than 4 or N may be a positive integer; and/or the first CQI table further includes the at least one entry in which the modulation scheme is 16 QAM in the second CQI table.

Further, values of N are merely several examples given in the present invention, and the present invention includes, but is not limited to, the examples.

The modulation schemes in the entries in the second CQI table include only QPSK, 16 QAM, and 64 QAM. An entry in the first CQI table may refer to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table, and an entry in the second CQI table refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the second CQI table. Certainly, an entry in the present invention may be set according to uplink state information or downlink state information, and entries in the first CQI table and the second CQI table are merely examples given in the present invention, and the present invention includes, but is not limited to, the examples.

In addition, the combination is a combination formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table. Using a second CQI table shown in Table 1 as an example, there are in total 2⁶−1=63 combinations formed by at least one entry in which a modulation scheme is QPSK in the second CQI table. For example, the combination may be a combination formed by an entry corresponding to a CQI index 6 in the second CQI table, may be a combination formed by entries corresponding to CQI indices 4, 5, and 6 in the second CQI table, may be a combination formed by entries corresponding to CQI indices 3, 5, and 6 in the second CQI table, or the like.

Specifically, there may be three types of first CQI tables as follows:

a first type of first CQI table: including only entries in which modulation schemes are QPSK and entries in which modulation schemes are higher than 64 QAM;

a second type of first CQI table: including only entries in which modulation schemes are 16 QAM and entries in which modulation schemes are higher than 64 QAM; and

a third type of first CQI table: including only entries in which modulation schemes are QPSK, entries in which modulation schemes are 16 QAM, and entries in which modulation schemes are higher than 64 QAM.

There may be multiple types of first CQI tables in the present invention, the foregoing three types of first CQI tables are merely examples given for ease of understanding the present invention, and the present invention includes, but is not limited to, the examples.

For the convenience of understanding, the following CQI table (that is, the second CQI table) is used as an example for description.

TABLE 1 Modulation CQI index scheme Code rate × 1024 Spectrum efficiency (CQI index) (modulation) (code rate × 1024) (efficiency) 0 Out of range (out of range) 1 QPSK 78 0.1523 2 QPSK 120 0.2344 3 QPSK 193 0.3770 4 QPSK 308 0.6016 5 QPSK 449 0.8770 6 QPSK 602 1.1758 7 16QAM 378 1.4766 8 16QAM 490 1.9141 9 16QAM 616 2.4063 10 64QAM 466 2.7305 11 64QAM 567 3.3223 12 64QAM 666 3.9023 13 64QAM 772 4.5234 14 64QAM 873 5.1152 15 64QAM 948 5.5547

The first CQI table includes the entries in which the modulation schemes are higher than 64 QAM, and exemplarily, a quantity of included entries in which modulation schemes are higher than 64 QAM may be one or more.

Exemplarily, a modulation scheme higher than 64 QAM and included in the first CQI table may be 128 QAM and/or 256 QAM. If the first CQI table includes an entry only of one modulation scheme, the modulation scheme in the entry may be any modulation scheme of 128 QAM, 256 QAM, and another modulation scheme with a higher modulation scheme; if the first CQI table includes entries of multiple modulation schemes, the multiple modulation schemes included in the first CQI table may be any multiple modulation schemes of 128 QAM, 256 QAM, and another modulation scheme with a higher modulation scheme.

Exemplarily, the entries in which the modulation schemes are higher than 64 QAM and that may be included in the first CQI table are shown in the following table.

TABLE 2 Modulation CQI index scheme Code rate × 1024 Spectrum efficiency (CQI index) (modulation) (code rate × 1024) (efficiency) 13 128QAM 778 6.0800 14 128QAM 860 6.7200 15 256QAM 942 7.3600

It should be noted that, in order to reduce a change to the prior art in a specific implementation process, preferably, a range of a CQI index in the first CQI table and a range of a CQI index in the second CQI table may be the same, which may be specifically 0 to 15. Certainly, the range of a CQI index in the first CQI table may also be greater than the range of a CQI index in the second CQI table, and exemplarily, the range of a CQI index in the first CQI table may be 0 to 20. The CQI indices in this embodiment of the present invention are merely examples given for the convenience of understanding the present invention, and the range of a CQI index in the present invention includes, but is not limited to, the examples.

For the first type of first CQI table, the first type of first CQI table includes only the entries in which the modulation schemes are QPSK and the entries in which the modulation schemes are higher than 64 QAM.

A quantity of entries in which the modulation schemes are higher than 64 QAM and that are included in the first CQI table may be one or more, and each entry in which the modulation scheme is higher than 64 QAM includes a modulation scheme, a code rate, and a spectrum efficiency, and has a corresponding CQI index.

The first CQI table may further include some entries in which modulation schemes are QPSK in the second CQI table, that is, some entries of 6 entries in which modulation schemes are QPSK and that correspond to CQI indices 1 to 6 in the second CQI table (that is, in the table 1), and the entries in which the modulation schemes are QPSK in the first CQI table are not N entries that are corresponding to consecutive maximum CQI indices and of the entries in which the modulation schemes are QPSK in the second CQI table, where N is equal to 3. That is, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 4, 5, and 6 in the second CQI table.

Alternatively, the first CQI table may further include some entries in which modulation schemes are QPSK in the second CQI table, that is, some entries of 6 entries in which modulation schemes are QPSK and that correspond to CQI indices 1 to 6 in the second CQI table, and the entries in which the modulation schemes are QPSK in the first CQI table are not N entries with consecutive maximum CQI indices of the entries in which the modulation schemes are QPSK in the second CQI table, where N is a positive integer and N is less than 4, that is, N may be equal to 1, 2, or 3, where

if N is equal to 1, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entry corresponding to the CQI index 6 in the second CQI table; or

if N is equal to 2, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 5 and 6 in the second CQI table; or

if N is equal to 3, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 4, 5, and 6 in the second CQI table.

Alternatively, the first CQI table further includes some entries in which modulation schemes are QPSK in the second CQI table, that is, some entries of 6 entries in which modulation schemes are QPSK and that correspond to CQI indices 1 to 6 in the second CQI table, and the entries in which the modulation schemes are QPSK in the first CQI table are not N entries that are corresponding to consecutive maximum CQI indices and of the entries in which the modulation schemes are QPSK in the second CQI table, where N is a positive integer. That is, a value range of N may be 1 to 5, where

if N is equal to 1, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entry corresponding to the CQI index 6 in the second CQI table; or

if N is equal to 2, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 5 and 6 in the second CQI table; or

if N is equal to 3, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 4, 5, and 6 in the second CQI table; or

if N is equal to 4, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 3, 4, 5, and 6 in the second CQI table; or

if N is equal to 5, the entries in which the modulation schemes are QPSK in the first CQI table cannot only be the entries corresponding to the CQI indices 2, 3, 4, 5, and 6 in the second CQI table.

Further, values of N are merely several examples given in the present invention, and the present invention includes, but is not limited to, the examples.

Alternatively, the entries in which the modulation schemes are QPSK in the first CQI table include some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals.

Exemplarily, if the entries in which the modulation schemes are QPSK in the first CQI table include 3 entries in which modulation schemes are QPSK in the second CQI table, the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 1, 3, and 5 in the second CQI table, or the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 2, 4, and 6 in the second CQI table.

Alternatively, the entries in which the modulation schemes are QPSK in the first CQI table include some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals.

Exemplarily, if the entries in which the modulation schemes are QPSK in the first CQI table include 3 entries in which modulation schemes are QPSK in the second CQI table, the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 1, 4, and 6 in the second CQI table, or the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 2, 5, and 6 in the second CQI table; or

if the entries in which the modulation schemes are QPSK in the first CQI table include 4 entries in which modulation schemes are QPSK in the second CQI table, the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 1, 3, 4, and 6 in the second CQI table; or

if the entries in which the modulation schemes are QPSK in the first CQI table include 5 entries in which modulation schemes are QPSK in the second CQI table, the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 1, 2, 3, 4, and 6 in the second CQI table.

Alternatively, the entries in which the modulation schemes are QPSK in the first CQI table include some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive.

Exemplarily, the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 1 and 3 in the second CQI table, or the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 2, 4, and 5 in the second CQI table.

Alternatively, the entries in which the modulation schemes are QPSK in the first CQI table include some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

Exemplarily, the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 2, 3, and 4 in the second CQI table, or the entries in which the modulation schemes are QPSK in the first CQI table may include the entries corresponding to the CQI indices 2, 3, 4, and 5 in the second CQI table.

For the second type of first CQI table, the second type of CQI table includes only the entries in which the modulation schemes are 16 QAM and the entries in which the modulation schemes are higher than 64 QAM.

A quantity of entries in which the modulation schemes are higher than 64 QAM and that are included in the first CQI table may be one or more, and each entry in which the modulation scheme is higher than 64 QAM includes a modulation scheme, a code rate, and a spectrum efficiency, and has a corresponding CQI index.

The first CQI table further includes all entries in which modulation schemes are 16 QAM in the second CQI table.

Exemplarily, the first CQI table further includes 3 entries in which corresponding modulation schemes are 16 QAM and that correspond to CQI indices 7 to 9, of the entries in which the modulation schemes are 16 QAM in the second CQI table.

Alternatively, specifically, the first CQI table further includes some entries in which modulation schemes are 16 QAM in the second CQI table and at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

Exemplarily, the entries in which the modulation schemes are 16 QAM in the first CQI table may further include entries corresponding to CQI indices 8 and 9 in the second CQI table, or the entries in which the modulation schemes are 16 QAM in the first CQI table may include an entry corresponding to a CQI index 8 or 9 in the second CQI table.

For the third type of first CQI table, based on the first type of first CQI table, entries in which modulation schemes are 16 QAM are added to obtain the third type of first CQI table. The third type of first CQI table includes only the entries in which the modulation schemes are QPSK, the entries in which the modulation schemes are 16 QAM, and the entries in which the modulation schemes are higher than 64 QAM. An entry in which a modulation scheme is 16 QAM and that is included in the third type of first CQI table may be the same as an entry in which a modulation scheme is 16 QAM and that is included in the second type of first CQI table.

Specifically, the first CQI table further includes all entries in which modulation schemes are 16 QAM in the second CQI table.

Alternatively, specifically, the first CQI table further includes some entries in which modulation schemes are 16 QAM in the second CQI table and at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

Further, the first CQI table further includes at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

That is, based on the first type of first CQI table, entries in which modulation schemes are 64 QAM are added to obtain a fourth type of first CQI table; in this case, the fourth type of first CQI table includes entries in which modulation schemes are QPSK, entries in which modulation schemes are higher than 64 QAM, and entries in which modulation schemes are 64 QAM.

Alternatively, based on the second type of first CQI table, entries in which modulation schemes are 64 QAM are added to obtain a fifth type of first CQI table; in this case, the fifth type of first CQI table includes entries in which modulation schemes are higher than 64 QAM, entries in which modulation schemes are 16 QAM, and entries in which modulation schemes are 64 QAM.

Alternatively, based on the third type of first CQI table, entries in which modulation schemes are 64 QAM are added to obtain a sixth type of first CQI table; in this case, the sixth type of first CQI table includes entries in which modulation schemes are higher than 64 QAM, and entries in which modulation schemes are QPSK, entries in which modulation schemes are 16 QAM, and entries in which modulation schemes are 64 QAM.

The entries in which the modulation schemes are 64 QAM in the fourth, fifth, and sixth types of first CQI tables are as follows:

Specifically, the first CQI table further includes all entries in which modulation schemes are 64 QAM in the second CQI table.

Exemplarily, the first CQI table includes 6 entries in which the modulation schemes are 64 QAM in the second CQI table correspond to 6 entries in which modulation schemes are 64 QAM and that correspond to second CQI indices 10 to 15.

Alternatively, specifically, the first CQI table further includes some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

Exemplarily, the entries in which the modulation schemes are 64 QAM in the first CQI table may further include entries corresponding to CQI indices 10 to M in the second CQI table, where M may be 11, 12, 13, or 14; the entries in which the modulation schemes are 64 QAM in the first CQI table may further include entries corresponding to CQI indices 10, 12, and 14 in the second CQI table; the entries in which the modulation schemes are 64 QAM in the first CQI table may further include entries corresponding to CQI indices 10 and 13 in the second CQI table; or the entries in which the modulation schemes are 64 QAM in the first CQI table may further include entries corresponding to CQI indices 10, 13, and 14 in the second CQI table.

Further, in the foregoing six types of first CQI tables, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM may be equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all the entries in which the modulation schemes are 64 QAM in the second CQI table.

Exemplarily, assume that in the first CQI table, there are 3 entries in which modulation schemes are QPSK, and corresponding CQI indices are 1 to 3; there are 3 entries in which modulation schemes are 16 QAM, and corresponding CQI indices are 4 to 6; there are 5 entries in which modulation schemes are 64 QAM, and corresponding CQI indices are 7 to 11; and a range of a CQI index in the first CQI table is 0 to 15. Then, there are 4 entries in which modulation schemes are higher than 64 QAM in the first CQI table, and corresponding CQI indices are 12 to 15; and an entry with a minimum CQI index is 12. Then specifically, as shown in the following table, an entry corresponding to the CQI index 12 in the first CQI table is the entry corresponding to the CQI index 15 in the second CQI table shown in Table 1.

As can be known from Table 3, entries corresponding to a same CQI index in the first CQI table and in the second CQI table may be the same, for example, when the CQI index is 1; entries corresponding to a same CQI index in the first CQI table and in the second CQI table may be different, for example, when the CQI index is 5, 9, or 10.

TABLE 3 CQI index CQI index in the first in the second CQI table CQI table Modulation Code rate × 1024 Efficiency 0 0 Out of range 1 1 QPSK 78 0.1523 2 3 QPSK 193 0.3770 3 5 QPSK 449 0.8770 4 7 16QAM 378 1.4766 5 8 16QAM 490 1.9141 6 9 16QAM 616 2.4063 7 10 64QAM 466 2.7305 8 11 64QAM 567 3.3223 9 12 64QAM 666 3.9023 10 13 64QAM 772 4.5234 11 14 64QAM 873 5.1152 12 15 256QAM 711 5.5547 13 — 256QAM 778 6.0800 14 — 256QAM 860 6.7200 15 — 256QAM 942 7.3600

As can be seen, the foregoing six types of first CQI tables all include an entry in which a modulation scheme is higher than 64 QAM, so as to support the UE in selecting a modulation scheme higher than 64 QAM and notifying the base station by using a method of sending a CQI index, thereby improving system performance. In addition, the sixth type of first CQI table that includes entries in which modulation schemes are QPSK, 16 QAM, and 64 QAM and entries in which modulation schemes are higher than 64 QAM is a preferred first CQI table.

Further, in the foregoing six types of first CQI tables, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where X is an integer greater than 2.

Specifically, that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant.

That spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

That is, assuming that the spectrum efficiencies in the X entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are (m₁, m₂, . . . m_(X)), starting from the second entry of the X entries, the difference between the spectrum efficiency in each entry and the spectrum efficiency in the previous entry of the entry is calculated and denoted as t_(i), where 1≤i≤X−1, that is, (t₁, t₂, . . . , t_(X−1)), and t_(i)=m_(i+1)−m_(i).

If all values in (t₁, t₂, . . . , t_(X−1)) are equal (are a constant), the spectrum efficiencies in the X entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged in an arithmetic progression in ascending order of spectrum efficiency, where the constant is referred to as a common difference of the arithmetic progression.

If there is a constant enabling all absolute values of differences between all the values in (t₁, t₂, . . . , t_(X−1)) and the constant to be within a preset value range, the spectrum efficiencies in the X entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency, which may also be understood as: if an absolute value of a difference between any two adjacent values in (t₁, t₂, . . . , t_(X−1)) is less than a preset value, each value in (t₁, t₂, . . . , t_(X−1)) is approximately equal, and then, the spectrum efficiencies in the X entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency, where the constant is referred to as a common difference of the approximate arithmetic progression.

Preferably, X=3.

Exemplarily, using X=3 as an example, 3 entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are shown in Table 4.

TABLE 4 CQI index Modulation Code rate × 1024 Efficiency 13 256QAM 778 6.0800 14 256QAM 860 6.7200 15 256QAM 942 7.3600

As shown in Table 4, spectrum efficiencies corresponding to entries with CQI indices 13 to 15 are 6.08, 6.72, and 7.36 respectively; starting from the second entry (that is, from the entry with the CQI index 14), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to 0.64, and then, the spectrum efficiencies in the 3 entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged in an arithmetic progression in ascending order of spectrum efficiency.

Exemplarily, using X=3 as an example, 3 entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are shown in Table 5.

TABLE 5 CQI index Modulation Code rate × 1024 Efficiency 13 256QAM 778 6.0781 14 256QAM 860 6.7188 15 256QAM 942 7.3594

As shown in Table 5, spectrum efficiencies corresponding to the entries with the CQI indices 13 to 15 are 6.0781, 6.7188, and 7.3594 respectively; starting from the second entry (that is, from the entry with the CQI index 14), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to 0.6407 and 0.6406 separately. Assuming that the preset value is 0.001, because an absolute value of a difference between 0.6407 and 0.6406 is equal to 0.0001, which is less than 0.001, 0.6407 is approximately equal to 0.6406, and then, the spectrum efficiencies in the 3 entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency.

Alternatively, as shown in Table 5, spectrum efficiencies corresponding to the entries with the CQI indices 13 to 15 are 6.0781, 6.7188, and 7.3594 respectively; assuming that the preset value is 0.001, starting from the second entry (that is, from the entry with the CQI index 14), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry is within a range from 0.64 minus 0.001 to 0.64 plus 0.001, and then, the spectrum efficiencies in the 3 entries that are corresponding to the maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency.

Further, in the foregoing six types of first CQI tables, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency.

That spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant.

That spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

That is, assuming that the spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are (m₁, m₂, . . . , m_(Y)), where the subscript Y indicates spectrum efficiencies in Y entries in which modulation schemes are 256 QAM, and Y≥3, starting from a second entry of the Y entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is calculated and denoted as t_(j), where 1≤j≤Y−1, that is, (t₁, t₂, . . . , t_(Y−1)), and t_(j)=m_(j+1)−m_(j).

If all values in (t₁, t₂, . . . , t_(Y−1)) are equal (are a constant), the spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency, where the constant is referred to as a common difference of the arithmetic progression.

If there is a constant enabling all absolute values of differences between all the values in (t₁, t₂, . . . , t_(Y−1)) and the constant to be within a preset value range, the spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency, which may also be understood as: if an absolute value of a difference between any two adjacent values in (t₁, t₂, . . . , t_(Y−1)) is less than a preset value, each value in (t₁, t₂, . . . , t_(Y−1)) is approximately equal, and then, the spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency, where the constant is referred to as a common difference of the approximate arithmetic progression.

Exemplarily, the entries in which the modulation schemes are 256 QAM of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are shown in Table 6.

TABLE 6 CQI index Modulation Code rate × 1024 Efficiency 12 256QAM 696 5.4400 13 256QAM 778 6.0800 14 256QAM 860 6.7200 15 256QAM 942 7.3600

As shown in Table 6, spectrum efficiencies corresponding to the entries in which the modulation schemes are 256 QAM are 5.44, 6.08, 6.72, and 7.36; starting from the second entry (that is, from the entry with the CQI index 13), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to 0.64, and then, the spectrum efficiencies corresponding to the entries in which the modulation schemes are 256 QAM in Table 6 are arranged in an arithmetic progression in ascending order of spectrum efficiency.

Exemplarily, the entries in which the modulation schemes are 256 QAM of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are shown in Table 7.

TABLE 7 CQI index Modulation Code rate × 1024 Efficiency 12 256QAM 696 5.4375 13 256QAM 778 6.0781 14 256QAM 860 6.7188 15 256QAM 942 7.3594

As shown in Table 7, spectrum efficiencies corresponding to the entries in which the modulation schemes are 256 QAM are 5.4375, 6.0781, 6.7188, and 7.3594; starting from the second entry (that is, from the entry with the CQI index 13), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to 0.6406, 0.6407, and 0.6406 separately. Assuming that the preset value is 0.001, because an absolute value of a difference between 0.6407 and 0.6406 is equal to 0.0001, which is less than 0.001, 0.6407 is approximately equal to 0.6406, and then, the spectrum efficiencies corresponding to the entries in which the modulation schemes are 256 QAM in Table 7 are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency.

Alternatively, as shown in Table 7, spectrum efficiencies corresponding to the entries in which the modulation schemes are 256 QAM are 5.4375, 6.0781, 6.7188, and 7.3594; assuming that the preset value is 0.001, starting from the second entry (that is, from the entry with the CQI index 13), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry is within a range from 0.64 minus 0.001 to 0.64 plus 0.001, and then, the spectrum efficiencies corresponding to the entries in which the modulation schemes are 256 QAM in Table 7 are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency.

Further, in the foregoing six types of first CQI tables, the first CQI table includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency.

Specifically, that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant.

That spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

That is, assuming that the spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are (m₁, m₂, . . . , m_(Z)), where the subscript Z indicates spectrum efficiencies in Z entries in which modulation schemes are higher than 64 QAM, and Z≥3, starting from a second entry of the Z entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is calculated and denoted as t_(k), where 1≤k≥Z−1, that is, (t₁, t₂, . . . , t_(z−1)), and t_(k)=m_(k+1)−m_(k).

If all values in (t₁, t₂, . . . , t_(z−1)) are equal (are a constant), the spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency, where the constant is referred to as a common difference of the arithmetic progression.

If there is a constant enabling all absolute values of differences between all the values in (t₁, t₂, . . . , t_(Z−1)) and the constant to be within a preset value range, the spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency, which may also be understood as: if an absolute value of a difference between any two adjacent values in (t₁, t₂, . . . , t_(Z−1)) is less than a preset value, each value in (t₁, t₂, . . . , t_(Z−1)) is approximately equal, and then, the spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency, where the constant is referred to as a common difference of the approximate arithmetic progression.

Exemplarily, entries in which modulation schemes are 256 QAM of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are shown in Table 8.

TABLE 8 CQI index Modulation Code rate × 1024 Efficiency 12 256QAM 696 5.4400 13 256QAM 778 6.0800 14 256QAM 860 6.7200 15 256QAM 942 7.3600

As shown in Table 8, spectrum efficiencies corresponding to the entries in which the modulation schemes are higher than 64 QAM are 5.44, 6.08, 6.72, and 7.36; starting from the second entry (that is, from the entry with the CQI index 13), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to 0.64, and then, the spectrum efficiencies in the entries in which the modulation schemes are higher than 64 QAM in Table 8 are arranged in an arithmetic progression in ascending order of spectrum efficiency.

Exemplarily, entries in which modulation schemes are 256 QAM of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table are shown in Table 9.

TABLE 9 CQI index Modulation Code rate × 1024 Efficiency 12 256QAM 696 5.4375 13 256QAM 778 6.0781 14 256QAM 860 6.7188 15 256QAM 942 7.3594

As shown in Table 9, spectrum efficiencies corresponding to the entries in which the modulation schemes are higher than 64 QAM are 5.4375, 6.0781, 6.7188, and 7.3594; starting from the second entry (that is, from the entry with the CQI index 13), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to 0.6406, 0.6407, and 0.6406 separately. Assuming that the preset value is 0.001, because an absolute value of a difference between 0.6407 and 0.6406 is equal to 0.0001, which is less than 0.001, 0.6407 is approximately equal to 0.6406, and then, the spectrum efficiencies corresponding to the entries in which the modulation schemes are higher than 64 QAM in Table 9 are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency.

Alternatively, as shown in Table 9, spectrum efficiencies corresponding to the entries in which the modulation schemes are higher than 64 QAM are 5.4375, 6.0781, 6.7188, and 7.3594; assuming that the preset value is 0.001, starting from the second entry (that is, from the entry with the CQI index 13), a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry is within a range from 0.64 minus 0.001 to 0.64 plus 0.001, and then, the spectrum efficiencies corresponding to the entries in which the modulation schemes are higher than 64 QAM in Table 9 are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency.

Further, the common difference of the arithmetic progression or the common difference of the approximate arithmetic progression is less than or equal to a first threshold. The first threshold may be any preset threshold, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

Exemplarily, the first CQI table in Table 3 is used as an example to obtain the following Table 10. A difference between spectrum efficiencies in adjacent entries in Table 10 is a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry starting from a second entry of modulation schemes with consecutive CQI indices (that is, from the entry with the CQI index 2 in the first CQI table).

TABLE 10 CQI index in CQI index in Difference between the first CQI the second Code spectrum efficiencies table CQI table Modulation rate × 1024 Efficiency in adjacent entries 0 0 Out of range 1 2 QPSK 120 0.2344 — 2 5 QPSK 449 0.877 0.6426 3 7 16QAM 378 1.4766 0.5996 4 8 16QAM 490 1.9141 0.4375 5 9 16QAM 616 2.4063 0.4922 6 11 64QAM 567 3.3223 0.916 7 12 64QAM 666 3.9023 0.58 8 13 64QAM 772 4.5234 0.6211 9 14 64QAM 873 5.1152 0.5918 10 15 256QAM 711 5.5547 0.4395 11 — 256QAM 757 5.9141 0.3594 12 — 256QAM 803 6.2734 0.3594 13 — 256QAM 849 6.6328 0.3594 14 — 256QAM 895 6.9922 0.3594 15 — 256QAM 941 7.3516 0.3594

As shown in Table 10, a minimum value of an absolute value of a difference between spectrum efficiencies corresponding to any two adjacent entries in which modulation schemes are 256 QAM is 0.3594, and a minimum value of an absolute value of a difference between spectrum efficiencies corresponding to any two adjacent entries in which modulation schemes are QPSK or 16 QAM or 64 QAM is 0.4375; therefore, in Table 10, the minimum value of the absolute value of the difference between the spectrum efficiencies corresponding to the any two adjacent entries in which the modulation schemes are 256 QAM is less than the minimum value of the absolute value of the difference between the spectrum efficiencies corresponding to the any two entries in which the modulation schemes are QPSK or 16 QAM or 64 QAM.

Further, in the foregoing six types of first CQI tables, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

Preferably, X=3.

The first threshold may be any preset threshold, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or may be a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

Exemplarily, the first CQI table in Table 3 is used as an example to obtain the following Table 11. A difference between spectrum efficiencies in adjacent entries in Table 11 is a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry starting from a second entry of modulation schemes with consecutive CQI indices (that is, from the entry with the CQI index 2 in the first CQI table).

TABLE 11 CQI index in CQI index in Difference between the first CQI the second Code spectrum efficiencies table CQI table Modulation rate × 1024 Efficiency in adjacent entries 0 0 Out of range 1 2 QPSK 120 0.2344 — 2 5 QPSK 449 0.877 0.6426 3 7 16QAM 378 1.4766 0.5996 4 8 16QAM 490 1.9141 0.4375 5 9 16QAM 616 2.4063 0.4922 6 11 64QAM 567 3.3223 0.916 7 12 64QAM 666 3.9023 0.58 8 13 64QAM 772 4.5234 0.6211 9 14 64QAM 873 5.1152 0.5918 10 15 256QAM 711 5.5547 0.4395 11 256QAM 757 5.9141 0.3594 12 256QAM 803 6.2734 0.3594 13 — 256QAM 849 6.6328 0.3594 14 — 256QAM 895 6.9922 0.3594 15 — 256QAM 941 7.3516 0.3594

As shown in Table 11, a minimum value of an absolute value of a difference between spectrum efficiencies corresponding to any two adjacent entries in which modulation schemes are 256 QAM is 0.3594, and a minimum value of an absolute value of a difference between spectrum efficiencies corresponding to any two adjacent entries in which modulation schemes are QPSK or 16 QAM or 64 QAM is 0.4375; therefore, in Table 11, the minimum value of the absolute value of the difference between the spectrum efficiencies corresponding to the any two adjacent entries in which the modulation schemes are 256 QAM is less than the minimum value of the absolute value of the difference between the spectrum efficiencies corresponding to the any two adjacent entries in which the modulation schemes are QPSK or 16 QAM or 64 QAM.

Further, it should be noted that the first CQI table is used for describing a mapping relationship between a CQI index and an entry. In this embodiment of the present invention, the mapping relationship in the first CQI table is merely an example given for the convenience of understanding the present invention, and a representation form of the first CQI table in the present invention includes, but is not limited to, the example. That is, the first CQI table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between a first CQI index and an entry can be reflected.

S102: The UE sends the first CQI index to a base station.

The present invention provides a notification method for a channel quality indicator and a modulation and coding scheme, which supports UE in selecting a modulation scheme higher than 64 QAM and notifying a base station by using a method of sending a CQI index, and meanwhile supports the base station in selecting a modulation scheme higher than 64 QAM and notifying the UE by using a method of sending an MCS index, thereby improving system performance. Further, using the modulation scheme higher than 64 QAM can provide higher quantization accuracy for an area with a high signal-to-noise ratio, thereby improving the system performance.

The following describes in detail a notification method for an MCS provided by an embodiment of the present invention with reference to the accompanying drawings.

As shown in FIG. 2, steps of the notification method for an MCS are as follows:

S201: A base station receives a first CQI index.

The first CQI index is determined by UE according to an acquired first CQI table. The first CQI table in this embodiment may be any one of the foregoing first CQI tables in the foregoing embodiment, and details are not described herein again.

S202: The base station determines a first MCS index according to a first CQI table, a first MCS table, and the received first CQI index.

The first CQI table may be predefined in a protocol, for example, preset by the UE according to protocol specifications, or pre-stored by the UE; or may be selected by the UE from at least two predefined tables according to a downlink channel state; or may be notified by the base station to the UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table. A CQI table is used for describing a mapping relationship between a CQI index and an entry. In this embodiment of the present invention, the mapping relationship in the CQI table is merely an example given for the convenience of understanding the present invention, and a representation form of the CQI table in the present invention includes, but is not limited to, the example. That is, the CQI table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between a CQI index and an entry can be reflected.

The first MCS table may be predefined in a protocol, for example, preset by the UE according to protocol specifications, or pre-stored by the UE; or may be selected by the UE from at least two predefined tables according to a downlink channel state; or may be notified by the base station to the UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table. An MCS table is used for describing a mapping relationship between an MCS index and an entry. In this embodiment of the present invention, the mapping relationship in the MCS table is merely an example given for the convenience of understanding the present invention, and a representation form of the MCS table in the present invention includes, but is not limited to, the example. That is, the MCS table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between an MCS index and an entry can be reflected.

The first CQI table may include:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

That is, the first CQI table includes the entries in which the modulation schemes are higher than 64 QAM; the first CQI table further includes the at least one entry in which the modulation scheme is QPSK in the second CQI table, and entries in which modulation schemes are QPSK in the first CQI table cannot only be the N entries that are corresponding to the consecutive maximum CQI indices and of the entries in which the modulation schemes are QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or the first CQI table further includes the at least one entry in which the modulation scheme is 16 QAM in the second CQI table, where modulation schemes in entries in the second CQI table include only QPSK, 16 QAM, and 64 QAM. An entry in the first CQI table refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table; an entry in the second CQI table refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the second CQI table.

The first MCS table may include:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a second combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the second combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

That is, the first MCS table further includes the at least one entry in which the modulation scheme is QPSK in the second MCS table; entries in which modulation schemes are QPSK in the first MCS table cannot only be the K entries that are corresponding to the consecutive maximum MCS indices and of the entries in which the modulation schemes are QPSK in the second MCS table indices, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or the first MCS table further includes the at least one entry in which the modulation scheme is 16 QAM in the second MCS table, where modulation schemes in entries in the second MCS table include only QPSK, 16 QAM, and 64 QAM. An entry in the first MCS table refers to one modulation scheme and one TBS index that correspond to each MCS index in the first MCS table, and an entry in the second MCS table refers to one modulation scheme and one TBS index that correspond to each MCS index in the second MCS table.

The combination is a combination formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table. Using a second MCS table shown in Table 14 as an example, there are in total 2¹⁰−1=1023 combinations formed by at least one entry in which a modulation scheme is QPSK in the second MCS table. For example, the combination may be a combination formed by an entry corresponding to a MCS index 6 in the second MCS table, may be a combination formed by entries corresponding to MCS indices 6, 7, 8, and 9 in the second MCS table, may be a combination formed by entries corresponding to MCS indices 3, 6, 7, 8, and 9 in the second MCS table, or the like.

Specifically, there may be three types of first MCS tables:

a first type of first MCS table: including only entries in which modulation schemes are QPSK and entries in which modulation schemes are higher than 64 QAM;

a second type of first MCS table: including only entries in which modulation schemes are 16 QAM and entries in which modulation schemes are higher than 64 QAM; and

a third type of first MCS table: including only entries in which modulation schemes are QPSK, entries in which modulation schemes are 16 QAM, and entries in which modulation schemes are higher than 64 QAM.

There may be multiple types of first MCS tables in the present invention, and the foregoing three types of first MCS tables are merely examples given for ease of understanding the present invention, and the present invention includes, but is not limited to, the examples.

Specifically, the determining a first MCS index according to an acquired first CQI table, an acquired first MCS table, and the received first CQI index includes:

determining a first TBS index and the first MCS index according to an acquired first PRB quantity, the first CQI table, the first MCS table, and the received first CQI index.

The first PRB quantity is a PRB quantity allocated by the base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient, where the specific coefficient is a pre-stored value or is a value notified by the base station to the UE.

Specifically, when a first modulation scheme is 256 QAM and the PRB quantity allocated to the UE is less than or equal to a specific threshold Q, the first PRB quantity is a maximum integer not greater than a product of the PRB quantity allocated to the UE and a specific coefficient P. A product of P and Q is not greater than a maximum PRB quantity, and in an LTE system, the maximum PRB quantity is 110. Preferably, when Q=82, and P=1.33, where P×Q=109.06<110, if the PRB quantity allocated by the base station to the UE is 50, the first PRB quantity is a maximum integer less than or equal to 50*1.33=66.5, that is, the first PRB quantity is 66.

A first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table.

A value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26; or

a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

Further specifically, the determining a first TBS index according to the first CQI table, a first PRB quantity, a first MCS table, and the received first CQI index includes:

first, determining, according to the received first CQI index and the first CQI table, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index;

second, learning, according to the first PRB quantity and the first spectrum efficiency, a first transport block size transmitted to the UE; and

then obtaining, according to the first TBS table, the first TBS index that corresponds to the first transport block size and the first PRB quantity in the first TBS table.

It should be noted that the first CQI table, the first MCS table, and the first TBS table may be pre-stored by the base station.

For the convenience of understanding, a TBS table in an existing protocol (that is, the second TBS table) is shown as follows:

TABLE 12 PRB quantity Second TBS index 1 2 3 4 . . . 106 107 108 109 110 0 16 32 56 88 . . . 2984 2984 2984 2984 3112 1 24 56 88 144 . . . 3880 3880 4008 4008 4008 2 32 72 144 176 . . . 4776 4776 4776 4968 4968 3 40 104 176 208 . . . 6200 6200 6200 6456 6456 4 56 120 208 256 . . . 7480 7736 7736 7736 7992 5 72 144 224 328 . . . 9528 9528 9528 9528 9528 6 328 176 256 392 . . . 11064 11064 11448 11448 11448 7 104 224 328 472 . . . 12960 12960 12960 13536 13536 8 120 256 392 536 . . . 14688 15264 15264 15264 15264 9 136 296 456 616 . . . 16992 16992 16992 16992 17568 10 144 328 504 680 . . . 18336 19080 19080 19080 19080 11 176 376 584 776 . . . 21384 21384 22152 22152 22152 12 208 440 680 904 . . . 24496 24496 24496 24496 25456 13 224 488 744 1000 . . . 27376 27376 27376 28336 28336 14 256 552 840 1128 . . . 30576 30576 30576 31704 31704 15 280 600 904 1224 . . . 32856 32856 32856 34008 34008 16 328 632 968 1288 . . . 34008 35160 35160 35160 35160 17 336 696 1064 1416 . . . 37888 39232 39232 39232 39232 18 376 776 1160 1544 . . . 42368 42368 42368 43816 43816 19 408 840 1288 1736 . . . 45352 46888 46888 46888 46888 20 440 904 1384 1864 . . . 48936 48936 51024 51024 51024 21 488 1000 1480 1992 . . . 52752 52752 55056 55056 55056 22 520 1064 1608 2152 . . . 57336 57336 59256 59256 59256 23 552 1128 1736 2280 . . . 61664 61664 61664 61664 63776 24 584 1192 1800 2408 . . . 63776 66592 66592 66592 66592 25 616 1256 1864 2536 . . . 66592 68808 68808 68808 71112 26 712 1480 2216 2984 . . . 75376 75376 75376 75376 75376

Exemplarily, when B=32, a range of the first TBS index is 0 to 32 (as shown in Table 13) in the first TBS table, where xxx shown in Table 13 indicates a transport block size, and a specific value may be set according to a simulation result.

TABLE 13 PRB quantity First TBS index 1 2 3 4 . . . 106 107 108 109 110 0 16 32 56 88 . . . 2984 2984 2984 2984 3112 1 24 56 88 144 . . . 3880 3880 4008 4008 4008 2 32 72 144 176 . . . 4776 4776 4776 4968 4968 3 40 104 176 208 . . . 6200 6200 6200 6456 6456 4 56 120 208 256 . . . 7480 7736 7736 7736 7992 5 72 144 224 328 . . . 9528 9528 9528 9528 9528 6 328 176 256 392 . . . 11064 11064 11448 11448 11448 7 104 224 328 472 . . . 12960 12960 12960 13536 13536 8 120 256 392 536 . . . 14688 15264 15264 15264 15264 9 136 296 456 616 . . . 16992 16992 16992 16992 17568 10 144 328 504 680 . . . 18336 19080 19080 19080 19080 11 176 376 584 776 . . . 21384 21384 22152 22152 22152 12 208 440 680 904 . . . 24496 24496 24496 24496 25456 13 224 488 744 1000 . . . 27376 27376 27376 28336 28336 14 256 552 840 1128 . . . 30576 30576 30576 31704 31704 15 280 600 904 1224 . . . 32856 32856 32856 34008 34008 16 328 632 968 1288 . . . 34008 35160 35160 35160 35160 17 336 696 1064 1416 . . . 37888 39232 39232 39232 39232 18 376 776 1160 1544 . . . 42368 42368 42368 43816 43816 19 408 840 1288 1736 . . . 45352 46888 46888 46888 46888 20 440 904 1384 1864 . . . 48936 48936 51024 51024 51024 21 488 1000 1480 1992 . . . 52752 52752 55056 55056 55056 22 520 1064 1608 2152 . . . 57336 57336 59256 59256 59256 23 552 1128 1736 2280 . . . 61664 61664 61664 61664 63776 24 584 1192 1800 2408 . . . 63776 66592 66592 66592 66592 25 616 1256 1864 2536 . . . 66592 68808 68808 68808 71112 26 712 1480 2216 2984 . . . 75376 75376 75376 75376 75376 27 xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx 28 xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx 29 xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx 30 xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx 31 xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx 32 xxx xxx xxx xxx xxx xxx xxx xxx xxx xxx

Finally, the first MCS index corresponding to the first TBS index is learned according to the first MCS table, the first modulation scheme, and the first TBS index.

The first CQI table in this embodiment may be the same as the first CQI table in the foregoing embodiment, and details are not described herein again. The following describes the first MCS table in this embodiment in detail.

For the convenience of understanding, the following MCS table (that is, the second MCS table) is used an example for description.

TABLE 14 MCS index in the second TBS index in the second MCS table Modulation order MCS table 0 2 0 1 2 1 2 2 2 3 2 3 4 2 4 5 2 5 6 2 6 7 2 7 8 2 8 9 2 9 10 4 9 11 4 10 12 4 11 13 4 12 14 4 13 15 4 14 16 4 15 17 6 15 18 6 16 19 6 17 20 6 18 21 6 19 22 6 20 23 6 21 24 6 22 25 6 23 26 6 24 27 6 25 28 6 26 29 2 Reserved 30 4 31 6

In Table 14, a modulation order corresponds to a modulation scheme. Exemplarily, if a modulation scheme is QPSK, a modulation order is 2; if a modulation scheme is 16 QAM, a modulation order is 4; if a modulation scheme is 64 QAM, a modulation order is 6; if a modulation scheme is 256 QAM, a modulation order is 8.

In Table 14, entries with MCS indices 29, 30, and 31 are reserved entries.

It should be noted that, in order to reduce a change to the prior art in a specific implementation process, preferably, a range of an MCS index in the first MCS table and a range of an MCS index in the second MCS table may be the same, which is 0 to 31. Certainly, the range of an MCS index in the first MCS table may also be greater than the range of an MCS index in the second MCS table, and exemplarily, the range of an MCS index in the first MCS table is 0 to 40.

For the first type of first MCS table, the first type of first MCS table includes only the entries in which the modulation schemes are QPSK and the entries in which the modulation schemes are higher than 64 QAM.

A quantity of entries in which the modulation schemes are higher than 64 QAM and that are included in the first MCS table may be one or more, and each entry in which the modulation scheme is higher than 64 QAM includes a modulation order and a first TBS index, and has a corresponding MCS index.

TABLE 15 MCS index in the second TBS index in the second MCS table Modulation order MCS table 21 8 26 22 8 27 23 8 28

The first MCS table further includes the at least one entry in which the modulation scheme is QPSK in the second MCS table, where the at least one entry in which the modulation scheme is QPSK includes the combination except the second combination of the combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table. That is, the first MCS table further includes the at least one entry in which the modulation scheme is QPSK in the second MCS table, and MCS indices, corresponding to the entries in which the modulation schemes are QPSK, in the first MCS table are not the K entries that are corresponding to the consecutive maximum MCS indices of the entries in which the modulation schemes are QPSK in the second MCS table, where K is 6. That is, some entries of 9 entries in which modulation schemes are QPSK and that correspond to indices 0 to 9 in the second MCS table (that is, in Table 14) are included, and the entries in which the modulation schemes are QPSK in the first MCS table are not 6 entries with consecutive maximum MCS indices of the entries in which the modulation schemes are QPSK in the second MCS table.

That is, the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 4, 5, 6, 7, 8, and 9 in the second MCS table.

Alternatively, the first MCS table further includes the at least one entry in which the modulation scheme is QPSK in the second MCS table, where MCS indices, corresponding to the entries in which the modulation schemes are QPSK, in the second MCS table are not entries corresponding to K consecutive maximum MCS indices, where K is a positive integer. That is, some entries of 9 entries in which modulation schemes are QPSK and that correspond to MCS indices 0 to 9 in the second MCS table are included, and the entries in which the modulation schemes are QPSK in the first MCS table are not the K entries with the consecutive maximum MCS indices of the entries in which the modulation schemes are QPSK in the second MCS table, where specifically, a value range of K may be 1 to 8, that is:

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entry corresponding to the MCS index 9 in the second MCS table; or

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 8 and 9 in the second MCS table;

or the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 7, 8 and 9 in the second MCS table; or

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 6, 7, 8 and 9 in the second MCS table; or

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 5, 6, 7, 8, and 9 in the second MCS table; or

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 4, 5, 6, 7, 8 and 9 in the second MCS table; or

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 3, 4, 5, 6, 7, 8 and 9 in the second MCS table; or

the entries in which the modulation schemes are QPSK in the first MCS table cannot only be the entries corresponding to the MCS indices 2, 3, 4, 5, 6, 7, 8, and 9 in the second MCS table.

Alternatively, the first MCS table includes some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals.

Exemplarily, if the entries in which the modulation schemes are QPSK in the first MCS table include 3 entries in which modulation schemes are QPSK in the second MCS table, the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 0, 3, and 6 in the second MCS table, or the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the CQI indices 2, 5, and 8 in the second MCS table, or the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the CQI indices 3, 6, and 9 in the second MCS table, or the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the CQI indices 0, 4, and 8 in the second MCS table, or the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the CQI indices 1, 5, and 9 in the second MCS table;

if the entries in which the modulation schemes are QPSK in the first MCS table include 4 entries in which modulation schemes are QPSK in the second MCS table, the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 0, 3, 6, and 9 in the seond MCS table; or

if the entries in which the modulation schemes are QPSK in the first MCS table include 5 entries in which modulation schemes are QPSK in the second MCS table, the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 1, 3, 5, 7, and 9 in the second MCS table, or the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 0, 2, 4, 6, and 8 in the second MCS table.

Alternatively, the first MCS table includes some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals.

Exemplarily, the entries in which the modulation schemes are QPSK in the first MCS table include M entries in which modulation schemes are QPSK in the second MCS table, where a value of M may be 3, 4, 5, 6, 7, 8 or 9. If M=5, the entries in which the modulation schemes are QPSK in the first MCS table include 5 entries in which modulation schemes are QPSK in the MCS table, and in this case, the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 1, 4, 7, 8, and 9 in the second MCS table.

Alternatively, the first MCS table includes some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive. That is, the some entries in which the modulation schemes are QPSK in the second MCS table and that are included in the first MCS table do not include the entry with the maximum MCS index of all the entries in which the modulation schemes are QPSK in the second MCS table.

Exemplarily, the entries in which the modulation schemes are QPSK in the first MCS table include M entries in which modulation schemes are QPSK in the second MCS table, where a value of M may be 1, 2, 3, 4, 5, 6, 7, 8, or 9. If M=8, the entries in which the modulation schemes are QPSK in the first MCS table include 8 entries in which modulation schemes are QPSK in the second MCS table, and in this case, the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 0, 1, 2, 3, 4, 5, 6, and 8 in the second MCS table.

Alternatively, the first MCS table includes some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive. That is, the some entries in which the modulation schemes are QPSK in the second MCS table and that are included in the first MCS table do not include the entry with the maximum MCS index of all the entries in which the modulation schemes are QPSK in the second MCS table.

Exemplarily, the entries in which the modulation schemes are QPSK in the first MCS table include M entries in which modulation schemes are QPSK in the second MCS table, where a value of M may be 1, 2, 3, 4, 5, 6, 7, 8, or 9. If M=8, the entries in which the modulation schemes are QPSK in the first MCS table include 8 entries in which modulation schemes are QPSK in the second MCS table, and in this case, the entries in which the modulation schemes are QPSK in the first MCS table may include the entries corresponding to the MCS indices 0, 1, 2, 3, 4, 5, 6, and 7 in the second MCS table.

For the second type of first MCS table, the second type of first MCS table includes only the entries in which the modulation schemes are 16 QAM and the entries in which the modulation schemes are higher than 64 QAM.

A quantity of entries in which the modulation schemes are higher than 64 QAM and that are included in the first MCS table may be one or more, and each entry in which the modulation scheme is higher than 64 QAM includes a modulation order and a first TBS index, and has a corresponding MCS index.

The first MCS table further includes the at least one entry in which the modulation scheme is 16 QAM in the second MCS table.

Specifically, the first MCS table further includes all entries in which modulation schemes are 16 QAM in the second MCS table.

Exemplarily, the first MCS table further includes 6 entries in which corresponding modulation schemes are 16 QAM and that correspond to MCS indices 10 to 16, of the entries in which the modulation schemes are 16 QAM in the second MCS table.

Alternatively, the first MCS table further includes some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals.

Exemplarily, if the entries in which the modulation schemes are 16 QAM in the first MCS table include 3 entries in which modulation schemes are 16 QAM in the second MCS table, the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 10, 13, and 16 in the second MCS table, or the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 10, 12, and 14 in the second MCS table, or the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 11, 13, and 15 in the second MCS table, or the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 12, 14, and 16 in the second MCS table; or

if the entries in which the modulation schemes are 16 QAM in the first MCS table include 4 entries in which modulation schemes are 16 QAM in the second MCS table, the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 10, 12, 14, and 16 in the second MCS table.

Alternatively, the first MCS table further includes entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals.

Exemplarily, the entries in which the modulation schemes are 16 QAM in the first MCS table include M entries in which modulation schemes are 16 QAM in the second MCS table, where a value of M may be 3, 4, 5, and 6. If M=5, the some entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 10, 12, 14, 15, and 16 in the second MCS table.

Alternatively, the first MCS table further includes some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive. That is, the first MCS table further includes the some entries in which the modulation schemes are 16 QAM in the second MCS table, where the MCS indices corresponding to the some entries are inconsecutive, and the some entries do not include the entry with the maximum MCS index of all the entries in which the modulation schemes are 16 QAM in the second MCS table.

Exemplarily, the entries in which the modulation schemes are 16 QAM in the first MCS table include M entries in which modulation schemes are 16 QAM in the second MCS table, where a value of M may be 1, 2, 3, 4, 5, or 6. If M=5, the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 10, 11, 12, 13, and 15 in the second MCS table.

Alternatively, the first MCS table further includes some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive. That is, the first MCS table further includes the some entries in which the modulation schemes are 16 QAM in the second MCS table, and the some entries do not include the entry with the maximum MCS index of all the entries in which the modulation schemes are 16 QAM in the second MCS table.

Exemplarily, the entries in which the modulation schemes are 16 QAM in the first MCS table include M entries in which modulation schemes are 16 QAM in the second MCS table, where a value of M may be 1, 2, 3, 4, 5, or 6. If M=6, the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 10, 11, 12, 13, 14, and 15 in the second MCS table.

Alternatively, the first MCS table further includes some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table. That is, the first MCS table further includes the some entries in which the modulation schemes are 16 QAM in the second MCS table, and the some entries do not include the entry with the maximum MCS index and the entry with the minimum MCS index of all the entries in which the modulation schemes are 16 QAM in the second MCS table.

Exemplarily, the entries in which the modulation schemes are 16 QAM in the first MCS table include M entries in which modulation schemes are 16 QAM in the second MCS table, where a value of M may be 1, 2, 3, 4, or 5. If M=5, the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 11, 12, 13, 14, and 15 in the second MCS table; or

if M=4, the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 11, 12, 13, and 14 in the second MCS table, or the entries in which the modulation schemes are 16 QAM in the first MCS table may include entries corresponding to MCS indices 11, 13, 14, and 15 in the second MCS table.

For the third type of first MCS table, based on the first type of first MCS table, entries in which modulation schemes are 16 QAM are added to obtain the third type of first MCS table. The third type of first MCS table includes only the entries in which the modulation schemes are QPSK, the entries in which modulation schemes are 16 QAM, and the entries in which the modulation schemes are higher than 64 QAM. Specifically, an entry in which a modulation scheme is 16 QAM and that is included in the third type of first MCS table may be the same as an entry in which a modulation scheme in the modulation schemes included in the second type of first MCS table is 16 QAM, reference may be made to description of an entry in which a modulation scheme is 16 QAM in the second type of first MCS table, and details are not described herein again.

Further, the first MCS table further includes at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

That is, based on the first type of first MCS table, a table to which entries in which modulation schemes are 64 QAM are added is a fourth type of first MCS table; in this case, the fourth type of first MCS table includes entries in which modulation schemes are QPSK, entries in which modulation schemes are higher than 64 QAM, and entries in which modulation schemes are 16 QAM.

Alternatively, based on the second type of first MCS table, a table to which entries in which modulation schemes are 64 QAM are added is a fifth type of first MCS table; in this case, the fifth type of first MCS table includes entries in which modulation schemes are 16 QAM, entries in which modulation schemes are higher than 64 QAM, and entries in which modulation schemes are 64 QAM.

Alternatively, based on the third type of first MCS table, a table to which entries in which modulation schemes are 64 QAM are added is a sixth type of first MCS table; in this case, the sixth type of first MCS table includes entries in which modulation schemes are QPSK, entries in which modulation schemes are 16 QAM, entries in which modulation schemes are higher than 64 QAM, and entries in which modulation schemes are 64 QAM.

The entries in which the modulation schemes are 64 QAM in the fourth, fifth, and sixth types of first MCS tables are as follows:

Specifically, the first MCS table further includes all entries in which modulation schemes are 64 QAM in the second MCS table.

Exemplarily, the first MCS table further includes 12 entries in which corresponding modulation schemes are 16 QAM and that correspond to MCS indices 17 to 28, of the entries in which the modulation schemes are 16 QAM in the second MCS table.

Alternatively, the first MCS table further includes some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table. That is, the some entries in which the modulation schemes are 64 QAM in the second MCS table are included, and the some entries do not include the entry with the minimum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

Exemplarily, the first MCS table further includes M entries in which modulation schemes are 64 QAM in the second MCS table, where a value range of M is 1 to 11, and M is an integer. If M=5, the entries in which the modulation schemes are 64 QAM in the first MCS table may include entries corresponding to MCS indices 18, 19, 20, 21, and 23 in the second MCS table, or the entries in which the modulation schemes are 64 QAM in the first MCS table may include entries corresponding to MCS indices 18, 20, 21, 24, and 25 in the second MCS table; or

if M=7, the entries in which the modulation schemes are 64 QAM in the first MCS table may include entries corresponding to MCS indices 18, 19, 20, 21, 23, 25, and 26 in the second MCS table, or the entries in which the modulation schemes are 64 QAM in the first MCS table may include entries corresponding to MCS indices 19, 20, 21, 24, 25, 27, and 28 in the second MCS table.

Further, in the foregoing six types of first MCS tables, a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

Exemplarily, assume that in the first MCS table, there are 5 entries in which modulation schemes are QPSK, and corresponding MCS indices are 0 to 4; there are 5 entries in which modulation schemes are 16 QAM, and corresponding MCS indices are 5 to 9; there are 11 entries in which modulation schemes are 64 QAM, and corresponding MCS indices are 10 to 20; and a range of an MCS index in the first MCS table is 0 to 31, where there are 7 entries (including 3 reserved entries, and MCS indices corresponding to the entries are 28, 29, 30, and 31) in which modulation schemes are higher than 64 QAM in the first MCS table, corresponding MCS indices are 21 to 28, and an entry with a minimum index is 21. Then specifically, as shown in the following Table 16, a TBS index in an entry with the MCS index 21 in the first MCS table is 26, which is equal to a TBS index in an entry corresponding to the MCS index 28 in the second MCS table shown in Table 14.

TABLE 16 MCS index in the MCS index in the Modulation TBS index in the first MCS table second MCS table order first MCS table 0 0 2 0 1 2 2 2 2 4 2 4 3 6 2 6 4 8 2 8 5 10 4 9 6 12 4 11 7 14 4 13 8 15 4 14 9 16 4 15 10 18 6 16 11 19 6 17 12 20 6 18 13 21 6 19 14 22 6 20 15 23 6 21 16 24 6 22 17 25 6 23 18 26 6 24 19 27 6 25 20 28 6 26 21 — 8 26 22 — 8 27 23 — 8 28 24 — 8 29 25 — 8 30 26 — 8 31 27 — 8 32 28 29 2 Reserved 29 30 4 30 31 6 31 8

As can be seen, the foregoing six types of first MCS tables all include an entry in which a modulation scheme is higher than 64 QAM, so as to support the base station in selecting a modulation scheme higher than 64 QAM and notifying the UE by using a method of sending an MCS index, thereby improving system performance. In addition, the sixth type of first MCS table that includes entries in which modulation schemes are QPSK, 16 QAM, and 64 QAM and entries in which modulation schemes are higher than 64 QAM is a preferred first MCS table.

S203: The base station sends the determined first MCS index to UE.

The present invention provides a notification method for a channel quality indicator and a modulation and coding scheme, which supports UE in selecting a modulation scheme higher than 64 QAM and notifying a base station by using a method of sending a CQI index, and meanwhile supports the base station in selecting a modulation scheme higher than 64 QAM and notifying the UE by using a method of sending an MCS index, thereby improving system performance. Further, using the modulation scheme higher than 64 QAM can provide higher quantization accuracy for an area with a high signal-to-noise ratio, thereby improving the system performance.

As shown in FIG. 3, the present invention further provides another notification method for an MCS. The method includes the following steps:

A first CQI table in this embodiment may be the same as or may be different from any one of the first CQI tables in the foregoing embodiment; however, a common point of the two is that an entry in which a modulation scheme is higher than 64 QAM is included. A first MCS table in this embodiment may be any one of the MCS tables in the foregoing embodiment.

The first CQI table may be predefined in a protocol, and preset by UE according to protocol specifications, or pre-stored by the UE; or may be selected by UE from at least two predefined tables according to a downlink channel state; or may be notified by a base station to UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table. A CQI table is used for describing a mapping relationship between a CQI index and an entry. In this embodiment of the present invention, the mapping relationship in the CQI table is merely an example given for the convenience of understanding the present invention, and a representation form of the CQI table in the present invention includes, but is not limited to, the example. That is, the CQI table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between a CQI index and an entry can be reflected.

The first MCS table may be predefined in a protocol, for example, preset by the UE according to protocol specifications, or pre-stored by the UE; or may be selected by the UE from at least two predefined tables according to a downlink channel state; or may be notified by the base station to the UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table. An MCS table is used for describing a mapping relationship between an MCS index and an entry. In this embodiment of the present invention, the mapping relationship in the MCS table is merely an example given for the convenience of understanding the present invention, and a representation form of the MCS table in the present invention includes, but is not limited to, the example. That is, the MCS table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between an MCS index and an entry can be reflected.

S301: A base station receives a first CQI index.

The first CQI index is determined by the base station according to an acquired first CQI table.

S302: The base station determines a first MCS index according to a first CQI table, a first MCS table, and the received first CQI index.

The first CQI table includes: entries in which modulation schemes are higher than 64 QAM, where an entry in the first CQI table refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table.

The first MCS table includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

That is, the first MCS table includes the entries in which the modulation schemes are higher than 64 QAM; and the first MCS table further includes the at least one entry in which the modulation scheme is QPSK in the second MCS table, and MCS indices, corresponding to entries in which modulation schemes are QPSK, in the second MCS table cannot only be entries corresponding to K consecutive maximum MCS indices, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or the first MCS table further includes the at least one entry in which the modulation scheme is 16 QAM in the second MCS table. Modulation schemes in entries in the second MCS table include only QPSK, 16 QAM, and 64 QAM. An entry in the first MCS table refers to one modulation scheme and one TBS index that correspond to each MCS index in the first MCS table, and an entry in the second MCS table refers to one modulation scheme and one TBS index that correspond to each MCS index in the second MCS table.

The combination is a combination formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table. Using the second MCS table shown in Table 6 as an example, there are in total 2¹⁰−1=1023 combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table. For example, the combination may be a combination formed by an entry corresponding to a CQI index 6 in the second MCS table, may be a combination formed by entries corresponding to MCS indices 6, 7, 8, and 9 in the second MCS table, may be a combination formed by entries corresponding to CQI indices 3, 6, 7, 8, and 9 in the second CQI table, or the like.

It should be noted that a method for determining, by the base station, a first MCS index according to the received first CQI index, a first CQI table, and a first MCS table is the same as the method described in the foregoing embodiment, and details are not described herein again.

In addition, the first MCS table in this embodiment may be any one of the six types of first MCS tables in the foregoing embodiment, and details are not described herein again.

S303: The base station sends the determined first MCS index to UE.

The present invention provides a notification method for a channel quality indicator and a modulation and coding scheme, which supports UE in selecting a modulation scheme higher than 64 QAM and notifying a base station by using a method of sending a CQI index, and meanwhile supports the base station in selecting a modulation scheme higher than 64 QAM and notifying the UE by using a method of sending an MCS index, thereby improving system performance. Further, using the modulation scheme higher than 64 QAM can provide higher quantization accuracy for an area with a high signal-to-noise ratio, thereby improving the system performance.

As shown in FIG. 4, the present invention further provides another notification method for an MCS. A first MCS table in this embodiment may be any one of the first MCS tables in the foregoing embodiment.

In this embodiment, the first MCS table may be predefined in a protocol, and preset by UE according to protocol specifications, or pre-stored by UE; or may be selected by UE from at least two predefined tables according to a downlink channel state; or may be notified by a base station to UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table. An MCS table is used for describing a mapping relationship between an MCS index and an entry. In this embodiment of the present invention, the mapping relationship in the MCS table is merely an example given for the convenience of understanding the present invention, and a representation form of the MCS table in the present invention includes, but is not limited to, the example. That is, the MCS table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between an MCS index and an entry can be reflected.

The method includes the following steps:

S401: UE receives a first MCS index sent by a base station.

The first MCS index is determined by the base station according to an acquired first MCS table.

S402: The UE determines a modulation order and a code block size according to a first MCS table and the received first MCS index.

The first MCS table includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The first MCS table includes the entries in which the modulation schemes are higher than 64 QAM; and the first MCS table further includes the at least one entry in which the modulation scheme is QPSK in the second MCS table, and MCS indices, corresponding to entries in which modulation schemes are QPSK, in the second MCS table cannot only be entries corresponding to K consecutive maximum MCS indices, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or the first MCS table further includes the at least one entry in which the modulation scheme is 16 QAM in the second MCS table. Modulation schemes in entries in the second MCS table include only QPSK, 16 QAM, and 64 QAM. An entry in the first MCS table refers to one modulation scheme and one TBS index that correspond to each MCS index in the first MCS table, and an entry in the second MCS table refers to one modulation scheme and one TBS index that correspond to each MCS index in the second MCS table.

The combination is a combination formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table. Using the second MCS table shown in Table 6 as an example, there are in total 2¹⁰−1=1023 combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table. For example, the combination may be a combination formed by an entry corresponding to a CQI index 6 in the second MCS table, may be a combination formed by entries corresponding to MCS indices 6, 7, 8, and 9 in the second MCS table, may be a combination formed by entries corresponding to CQI indices 3, 6, 7, 8, and 9 in the second CQI table, or the like.

It should be noted that the first MCS table in this embodiment may be any one of the six types of first MCS tables in the foregoing embodiment, and details are not described herein again.

Specifically, the determining a modulation order and a code block size according to a first MCS table and the received first MCS index includes:

determining a first TBS index and the modulation order according to the first MCS table and the received first MCS index; and

determining the code block size according to the first TBS index, a first PRB quantity, and a first TBS table.

The first PRB quantity is a PRB quantity allocated by the base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient.

The first TBS table includes at least one PRB quantity corresponding to each TB S index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table.

A value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26; or

a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

Further, the UE receives a PDSCH according to the modulation order and the code block size.

The present invention provides a notification method for a channel quality indicator and a modulation and coding scheme, which supports UE in selecting a modulation scheme higher than 64 QAM and notifying a base station by using a method of sending a CQI index, and meanwhile supports the base station in selecting a modulation scheme higher than 64 QAM and notifying the UE by using a method of sending an MCS index, thereby improving system performance. Further, using the modulation scheme higher than 64 QAM can provide higher quantization accuracy for an area with a high signal-to-noise ratio, thereby improving the system performance.

As shown in FIG. 5, an embodiment of the present invention provides a notification apparatus 50 for a CQI. The apparatus 50 includes:

an acquiring module 51, configured to acquire a first CQI table, where

the first CQI table may be predefined by UE, or may be notified by a base station to UE, or is selected by UE from at least two predefined tables according to a downlink channel state, where specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to a uplink channel state or a downlink channel state, and reports the table to the UE; and the CQI table is used for describing a mapping relationship between a CQI index and an entry, that is, the mapping relationship is not limited to being indicated by using a table, and may be indicated by using an expression;

a first acquiring module 52, configured to learn a first CQI index according to the first CQI table acquired by the acquiring module 51; and

a sending module 53, configured to send the first CQI index learned by the first acquiring module 52 to a base station, so that the base station determines a first modulation and coding scheme MCS index according to the first CQI index;

where the first CQI table acquired by the acquiring module 51 includes:

entries in which modulation schemes are higher than 64 quadrature amplitude modulation QAM; and

at least one entry in which a modulation scheme is quadrature phase shift keying QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in entries in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

The at least one entry in which the modulation scheme is QPSK in the second CQI table in the first CQI table acquired by the acquiring module includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second CQI table in the first CQI table acquired by the acquiring module includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

Further, the first CQI table acquired by the acquiring module 51 further includes: at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

Specifically, the at least one entry in which the modulation scheme is 64 QAM in the first CQI table acquired by the acquiring module includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

Further, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 51 is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.

Further, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 51 are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

Further, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 51 include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

Further, the first CQI table acquired by the acquiring module 51 includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

Further, the constant is less than or equal to a first threshold.

Further, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 51 is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table acquired by the acquiring module includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

Further, X=3.

Further, the first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

Further, a value range of a CQI index in the first CQI table acquired by the acquiring module 51 is the same as a value range of a CQI index in the second CQI table.

The notification apparatus for a CQI shown in FIG. 5 can perform corresponding steps in the foregoing method embodiments. For details, reference may be made to descriptions of the foregoing method embodiments, and for effects achieved by the apparatus, reference may also be made to the descriptions of the foregoing method embodiments.

As shown in FIG. 6, an embodiment of the present invention further provides a notification apparatus 60 for an MCS. The apparatus 60 includes:

an acquiring module 61, configured to acquire a first CQI table and a first MCS table, where

the first CQI table may be predefined in a protocol, and preset by UE according to protocol specifications, or pre-stored by UE, or may be selected by UE from at least two predefined tables according to a downlink channel state, or may be notified by a base station to UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table; a CQI table is used for describing a mapping relationship between a CQI index and an entry; in this embodiment of the present invention, the mapping relationship in the CQI table is merely an example given for the convenience of understanding the present invention; a representation form of the CQI table in the present invention includes, but is not limited to, the example, that is, the CQI table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between a CQI index and an entry can be reflected; and

the first MCS table may be predefined in a protocol, for example preset by the UE according to protocol specifications, or pre-stored by the UE, or may be selected by the UE from at least two predefined tables according to a downlink channel state, or may be notified by the base station to the UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table; an MCS table is used for describing a mapping relationship between an MCS index and an entry; in this embodiment of the present invention, the mapping relationship in the MCS table is merely an example given for the convenience of understanding the present invention; a representation form of the MCS table in the present invention includes, but is not limited to, the example, that is, the MCS table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between an MCS index and an entry can be reflected;

a receiving module 62, configured to receive a first CQI index sent by the terminal UE, where the first CQI index is determined by the UE according to the first CQI table;

a determining module 63, configured to determine a first MCS index according to the first CQI table acquired by the acquiring module 61, the first MCS table acquired by the acquiring module 61, and the first CQI index received by the receiving module 62; and

a sending module 64, configured to send the determined first MCS index to the UE;

where the first CQI table acquired by the acquiring module 61 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

The first MCS table acquired by the acquiring module 61 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a second combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the second combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The determining module 63 is specifically configured to:

determine a first TBS index and the first MCS index according to a first PRB quantity acquired by the acquiring module 61, the first CQI table acquired by the acquiring module 61, the first MCS table acquired by the acquiring module 61, and the received first CQI index, where:

the first PRB quantity is a PRB quantity allocated by the base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient;

a first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

The determining module 63 includes:

a first determining submodule 631, configured to determine, according to the first CQI table acquired by the acquiring module 61 and the first CQI index received by the receiving module, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index; and

a second determining submodule 632, configured to learn, according to the acquired first PRB quantity and the first spectrum efficiency determined by the first determining submodule, a first transport block size transmitted to the UE; and

obtain, according to the first TBS table, the first TBS index that corresponds to the first transport block size determined by the second determining submodule and the first PRB quantity in the first TBS table.

The at least one entry in which the modulation scheme is QPSK in the second CQI table in the first CQI table acquired by the acquiring module 61 includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second CQI table in the first CQI table acquired by the acquiring module 61 includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

Further, the first CQI table acquired by the acquiring module 61 may further include:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

Specifically, the at least one entry in which the modulation scheme is 64 QAM in the second CQI table in the first CQI table acquired by the acquiring module 61 includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

Further, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 61 is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.

Further, spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 61 are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

Further, the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 61 include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

Further, the first CQI table acquired by the acquiring module 61 includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

Further, the constant is less than or equal to a first threshold.

Further, an absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 61 is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the acquiring module 61 include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table acquired by the acquiring module 61 includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

Further, X=3.

Further, the first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

Further, a value range of a CQI index in the first CQI table acquired by the acquiring module 61 is the same as a value range of a CQI index in the second CQI table.

The at least one entry in which the modulation scheme is QPSK in the second MCS table in the first CQI table acquired by the acquiring module 61 includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first CQI table acquired by the acquiring module 61 includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

Further, the first MCS table acquired by the acquiring module 61 further includes: at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

Specifically, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first CQI table acquired by the acquiring module 61 includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

Further, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table includes: a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table acquired by the acquiring module 61 is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

Further, a value range of an MCS index in the first MCS table acquired by the acquiring module 61 is the same as a value range of an MCS index in the second MCS table.

The notification apparatus for an MCS shown in FIG. 6 can perform corresponding steps in the foregoing method embodiments. For details, reference may be made to descriptions of the foregoing method embodiments, and for effects achieved by the apparatus, reference may also be made to the descriptions of the foregoing method embodiments.

As shown in FIG. 7, an embodiment of the present invention further provides a notification apparatus 70 for an MCS. The apparatus 70 includes:

an acquiring module 71, configured to acquire a first CQI table and a first MCS table, where

the first CQI table may be predefined in a protocol, and preset by UE according to protocol specifications, or pre-stored by UE, or may be selected by UE from at least two predefined tables according to a downlink channel state, or may be notified by a base station to UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table; a CQI table is used for describing a mapping relationship between a CQI index and an entry; in this embodiment of the present invention, the mapping relationship in the CQI table is merely an example given for the convenience of understanding the present invention; a representation form of the CQI table in the present invention includes, but is not limited to, the example, that is, the CQI table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between a CQI index and an entry can be reflected; and

the first MCS table may be predefined in a protocol, for example, preset by the UE according to protocol specifications, or pre-stored by the UE, or may be selected by the UE from at least two predefined tables according to a downlink channel state, or may be notified by the base station to the UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table; an MCS table is used for describing a mapping relationship between an MCS index and an entry; in this embodiment of the present invention, the mapping relationship in the MCS table is merely an example given for the convenience of understanding the present invention; a representation form of the MCS table in the present invention includes, but is not limited to, the example, that is, the MCS table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between an MCS index and an entry can be reflected;

a receiving module 72, configured to receive, by the base station, a first CQI index, where the first CQI index is determined by the UE according to the first CQI table;

a determining module 73, configured to determine a first MCS index according to the first CQI table acquired by the acquiring module 71, the first MCS table acquired by the acquiring module 71, and the first CQI index received by the receiving module 72; and

a sending module 74, configured to send the first MCS index determined by the determining module 73 to the UE;

where the first CQI table acquired by the acquiring module 71 includes: entries in which modulation schemes are higher than 64 QAM, where an entry in the first CQI table refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table; and

the first MCS table acquired by the acquiring module 71 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The at least one entry in which the modulation scheme is QPSK in the second MCS table in the first MCS table acquired by the acquiring module 71 includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first MCS table acquired by the acquiring module 71 includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

Further, the first MCS table acquired by the acquiring module 71 further includes: at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

Specifically, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the acquiring module 71 includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

Further, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the acquiring module 71 includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table acquired by the acquiring module 71 is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

Further, a value range of an MCS index in the first MCS table acquired by the acquiring module 71 is the same as a value range of an MCS index in the second MCS table.

The notification apparatus for an MCS shown in FIG. 7 can perform corresponding steps in the foregoing method embodiments. For details, reference may be made to descriptions of the foregoing method embodiments, and for effects achieved by the apparatus, reference may also be made to the descriptions of the foregoing method embodiments.

As shown in FIG. 8, an embodiment of the present invention further provides a notification apparatus 80 for an MCS. The apparatus 80 includes:

an acquiring module 81, configured to acquire a first MCS table, where

the first MCS table may be predefined in a protocol, and preset by UE according to protocol specifications, or pre-stored by UE, or may be selected by UE from at least two predefined tables according to a downlink channel state, or may be notified by a base station to UE, and specifically, a method for notifying the UE by the base station may be that the base station selects one of at least two predefined tables according to an uplink channel state or a downlink channel state, and notifies the UE of the table; an MCS table is used for describing a mapping relationship between an MCS index and an entry; in this embodiment of the present invention, the mapping relationship in the MCS table is merely an example given for the convenience of understanding the present invention; a representation form of the MCS table in the present invention includes, but is not limited to, the example, that is, the MCS table may have multiple combinations, and the combinations shall fall within the protection scope of the present invention as long as a mapping relationship between an MCS index and an entry can be reflected;

a receiving module 82, configured to receive a first MCS index sent by a base station, where the first MCS index is determined by the base station according to the first MCS table; and

a determining module 83, configured to determine a modulation order and a code block size according to the first MCS table and the first MCS index received by the receiving module 82;

where the first MCS table acquired by the acquiring module 81 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The determining module 83 includes:

a first determining submodule 831, configured to determine a first TBS index and the modulation order according to the first MCS table acquired by the acquiring module 81 and the received first MCS index; and

a second determining submodule 832, configured to determine the code block size according to the first TBS index, a first PRB quantity, and a first TBS table, where:

the first PRB quantity is a PRB quantity allocated by the base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient;

the first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

The at least one entry in which the modulation scheme is QPSK in the second MCS table in the first MCS table acquired by the acquiring module 81 includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first MCS table acquired by the acquiring module 81 includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

Further, the first MCS table acquired by the acquiring module 81 further includes: at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

Specifically, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the acquiring module 81 includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

Further, the at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the acquiring module 81 includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

Further, a value range of an MCS index in the first MCS table acquired by the acquiring module 81 is the same as a value range of an MCS index in the second MCS table.

The notification apparatus for an MCS shown in FIG. 8 can perform corresponding steps in the foregoing method embodiments. For details, reference may be made to descriptions of the foregoing method embodiments, and for effects achieved by the apparatus, reference may also be made to the descriptions of the foregoing method embodiments.

As shown in FIG. 9, an embodiment of the present invention further provides a notification apparatus 90 for a channel quality indicator CQI, including a processor 91 and a transmitter 92, where

the processor 91 is configured to acquire a first CQI table; and configured to learn a first CQI index according to the first CQI table; and

the transmitter 92 is configured to send the first CQI index learned by the processor 91 to a base station, so that the base station determines a first modulation and coding scheme MCS index according to the first CQI index;

where the first CQI table acquired by the processor 91 includes:

entries in which modulation schemes are higher than 64 quadrature amplitude modulation QAM; and

at least one entry in which a modulation scheme is quadrature phase shift keying QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in entries in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

The at least one entry in which the modulation scheme is QPSK in the second CQI table in the first CQI table acquired by the processor 91 includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second CQI table in the first CQI table acquired by the processor 91 includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

The first CQI table acquired by the processor 91 further includes:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

The at least one entry in which the modulation scheme is 64 QAM in the first CQI table acquired by the processor 91 includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

Further, a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 91 is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.

Spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 91 are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

The entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 91 include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

The first CQI table acquired by the processor 91 includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

The constant is less than or equal to a first threshold.

An absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 91 is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 91 include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table acquired by the processor 91 includes: at least two entries in which the modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

X=3.

The first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

A value range of a CQI index in the first CQI table acquired by the processor 91 is the same as a value range of a CQI index in the second CQI table.

As shown in FIG. 10, an embodiment of the present invention further provides a notification apparatus 10 for a modulation and coding scheme MCS, including:

a processor 101, configured to acquire a first CQI table and a first MCS table;

a receiver 102, configured to receive a first channel quality indicator CQI index sent by terminal UE, where the first CQI index is determined by the UE according to the first CQI table, where

the processor 101 is configured to determine a first MCS index according to the first CQI table acquired by the processor 101, the first MCS table acquired by the processor 101, and the first CQI index received by the receiver; and

a transmitter 103, configured to send the first MCS index determined by the processor 101 to the UE;

where the first CQI table acquired by the processor 101 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second CQI table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second CQI table, and the first combination is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, where N is equal to 3 or N is a positive integer less than 4 or N is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second CQI table, where

modulation schemes in the second CQI table include only QPSK, 16 QAM, and 64 QAM.

The first MCS table acquired by the processor 101 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a second combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the second combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The processor 101 is specifically configured to:

determine a first TBS index and the first MCS index according to an acquired first PRB quantity, the first CQI table acquired by the processor 101, the first MCS table acquired by the processor 101, and the received first CQI index, where:

the first PRB quantity is a PRB quantity allocated by a base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient;

a first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

The processor 101 is specifically configured to:

determine, according to the first CQI table acquired by the processor 101 and the first CQI index received by the receiver 102, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index;

learn, according to the first PRB quantity and the determined first spectrum efficiency, a first transport block size transmitted to the UE; and

obtain, according to the first TBS table, the first TBS index that corresponds to the determined first transport block size and the first PRB quantity in the first TBS table.

The at least one entry in which the modulation scheme is QPSK in the second CQI table in the first CQI table acquired by the processor 101 includes:

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the second CQI table, where CQI indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are QPSK in the CQI table, where CQI indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second CQI table in the first CQI table acquired by the processor 101 includes:

all entries in which modulation schemes are 16 QAM in the second CQI table; or

at least one entry, except an entry corresponding to a minimum CQI index, of all entries in which modulation schemes are 16 QAM in the second CQI table.

The first CQI table acquired by the processor 101 further includes:

at least one entry in which a modulation scheme is 64 QAM in the second CQI table.

The at least one entry in which the modulation scheme is 64 QAM in the second CQI table in the first CQI table acquired by the processor 101 includes:

all entries in which modulation schemes are 64 QAM in the second CQI table; or

some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.

A spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 101 is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.

Spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 101 are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the X entries, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value, where X is an integer greater than 2.

The entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 101 include: at least three entries in which modulation schemes are 256 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are 256 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are 256 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

The first CQI table acquired by the processor 101 includes: at least three entries in which modulation schemes are higher than 64 QAM, where spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency, where: that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged in an arithmetic progression or approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is equal to a same constant; and that spectrum efficiencies in the at least three entries in which the modulation schemes are higher than 64 QAM are arranged approximately in an arithmetic progression in ascending order of spectrum efficiency indicates that, in ascending order of spectrum efficiency and starting from a second entry of the at least three entries in which the modulation schemes are higher than 64 QAM, a difference between a spectrum efficiency in each entry and a spectrum efficiency in a previous entry of the entry is within a range from a constant minus a preset value to the constant plus the preset value.

The constant is less than or equal to a first threshold.

An absolute value of a difference between spectrum efficiencies in any two adjacent entries of X entries that are corresponding to maximum CQI indices and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 101 is less than or equal to a first threshold; or

the entries in which the modulation schemes are higher than 64 QAM in the first CQI table acquired by the processor 101 include: at least two entries in which modulation schemes are 256 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are 256 QAM is less than or equal to a first threshold; or

the first CQI table acquired by the processor 101 includes: at least two entries in which modulation schemes are higher than 64 QAM, where an absolute value of a difference between spectrum efficiencies in any two adjacent entries of the at least two entries in which the modulation schemes are higher than 64 QAM is less than or equal to a first threshold.

X=3.

The first threshold is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are the same and the modulation schemes are lower than or equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 64 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to 16 QAM in the first CQI table, or is a minimum value of an absolute value of a difference between spectrum efficiencies in any two adjacent entries in which modulation schemes are equal to QPSK in the first CQI table.

A value range of a CQI index in the first CQI table acquired by the processor 101 is the same as a value range of a CQI index in the second CQI table.

The at least one entry in which the modulation scheme is QPSK in the second MCS table in the first CQI table acquired by the processor 101 includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first CQI table acquired by the processor 101 includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

The first MCS table acquired by the processor 101 further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

The at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first CQI table acquired by the processor 101 includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

The at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first CQI table acquired by the processor 101 includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

A value range of an MCS index in the first MCS table acquired by the processor 101 is the same as a value range of an MCS index in the second MCS table.

As shown in FIG. 11, an embodiment of the present invention further provides a notification apparatus 11 for a modulation and coding scheme MCS, including:

a processor 111, configured to acquire a first MCS table; and

a receiver 112, configured to receive a first MCS index sent by a base station, where the first MCS index is determined by the base station according to the first MCS table acquired by the processor 111, where

the processor 111 is configured to determine a modulation order and a code block size according to the first MCS table acquired by the processor and the first MCS index received by the receiver;

where the first MCS table acquired by the processor 111 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The processor 111 is specifically configured to:

determine a first TBS index and the modulation order according to the first MCS table acquired by the processor 111 and the received first MCS index; and

determine the code block size according to the first TBS index, a first PRB quantity, and a first TBS table, where:

the first PRB quantity is a PRB quantity allocated by the base station to UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to UE and a specific coefficient;

the first TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, where the first TBS table is a TBS table corresponding to the first MCS table; and

a value range of a TBS index in the first TBS table is 0 to A, where A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, where B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table includes at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.

The at least one entry in which the modulation scheme is QPSK in the second MCS table in the first MCS table acquired by the processor 111 includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first MCS table acquired by the processor 111 includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

The first MCS table acquired by the processor 111 further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

The at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the processor 111 includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

The at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the processor 111 includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

A value range of an MCS index in the first MCS table acquired by the processor 111 is the same as a value range of an MCS index in the second MCS table.

As shown in FIG. 12, the present invention provides a notification apparatus for a modulation and coding scheme MCS, including:

a processor 121, configured to acquire a first CQI table and a first MCS table;

a receiver 122, configured to receive a first CQI index, where the first CQI index is determined by UE according to the first CQI table, where

the processor 121 is configured to determine a first MCS index according to the acquired first CQI table, the acquired first MCS table, and the first CQI index received by the receiver; and

a transmitter 123, configured to send the first MCS index determined by the processor 121 to the UE;

where the first CQI table acquired by the processor 121 includes: entries in which modulation schemes are higher than 64 QAM, where an entry in the first CQI table acquired by the processor 121 refers to one modulation scheme, one code rate, and one spectrum efficiency that correspond to each CQI index in the first CQI table acquired by the processor 121; and

the first MCS table acquired by the processor 121 includes:

entries in which modulation schemes are higher than 64 QAM; and

at least one entry in which a modulation scheme is QPSK in a second MCS table, where the at least one entry in which the modulation scheme is QPSK includes a combination except a first combination of combinations formed by the at least one entry in which the modulation scheme is QPSK in the second MCS table, and the first combination is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, where K is equal to 4 or K is a positive integer less than 5 or K is a positive integer; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table, where

modulation schemes in the second MCS table include only QPSK, 16 QAM, and 64 QAM.

The at least one entry in which the modulation scheme is QPSK in the second MCS table in the first MCS table acquired by the processor 121 includes:

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are QPSK in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are QPSK in the second MCS table, where MCS indices corresponding to the some entries are consecutive.

The at least one entry in which the modulation scheme is 16 QAM in the second MCS table in the first MCS table acquired by the processor 121 includes:

all entries in which modulation schemes are 16 QAM in the second MCS table; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are not at equal intervals; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum second MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are inconsecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table, where MCS indices corresponding to the some entries are consecutive; or

some entries in which modulation schemes are 16 QAM in the second MCS table, and at least one entry, except an entry with a maximum MCS index and an entry with a minimum MCS index, of all entries in which modulation schemes are 16 QAM in the second MCS table.

The first MCS table acquired by the processor 121 further includes:

at least one entry in which a modulation scheme is 64 QAM in the second MCS table.

The at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the processor 121 includes:

all entries in which modulation schemes are 64 QAM in the second MCS table; or

some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.

The at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first MCS table acquired by the processor 121 includes:

a TBS index in an entry that is corresponding to a minimum MCS index and of all entries in which modulation schemes are higher than 64 QAM in the first MCS table is the same as a TBS index in an entry with a maximum MCS index of all the entries in which the modulation schemes are 64 QAM in the second MCS table.

A value range of an MCS index in the first MCS table acquired by the processor 121 is the same as a value range of an MCS index in the second MCS table.

It should be noted that the apparatuses shown in FIG. 9 to FIG. 12 can separately implement the methods provided in the foregoing method embodiments. For details, reference may be made to descriptions of the foregoing embodiments, and for effects achieved by the apparatuses, reference may also be made to the descriptions of the foregoing embodiments.

It may be clearly understood by persons skilled in the art that, for the purpose of convenient and brief description, division of the foregoing functional modules is merely used as an example for description. In actual applications, the foregoing functions can be allocated to different functional modules and implemented according to a requirement, that is, the inner structure of the apparatus is divided into different functional modules to implement all or some of the functions described above. For a detailed working process of the foregoing system, apparatus, and unit, reference may be made to a corresponding process in the foregoing method embodiments, and details are not provided herein again.

In the several embodiments provided in this application, it should be understood that the disclosed system, apparatus, and method may be implemented in other manners. For example, the described apparatus embodiment is merely exemplary. For example, the unit division is merely logical function division and may be other division in actual implementation. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not performed. In addition, the displayed or discussed mutual couplings or direct couplings or communication connections may be implemented by using some interfaces. The indirect couplings or communication connections between the apparatuses or units may be implemented in electronic, mechanical, or other forms.

The units described as separate parts may or may not be physically separate, and parts displayed as units may or may not be physical units, may be located in one position, or may be distributed on multiple network units. Some or all of the units may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.

In addition, functional units in the embodiments of the present invention may be integrated into one processing unit, or each of the units may exist alone physically, or two or more units are integrated into one unit. The integrated unit may be implemented in a form of hardware, or may be implemented in a form of hardware in addition to a software functional unit.

When the foregoing integrated unit is implemented in a form of a software functional unit, the integrated unit may be stored in a computer-readable storage medium. The software functional unit is stored in a storage medium and includes several instructions for instructing a computer device (which may be a personal computer, a server, or a network device) to perform some of the steps of the methods described in the embodiments of the present invention. The foregoing storage medium includes: any medium that can store program code, such as a USB flash drive, a removable hard disk, a read-only memory (Read-Only Memory, ROM for short), a random access memory (Random Access Memory, RAM for short), a magnetic disk, or an optical disc.

Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present invention rather than limiting the present invention. Although the present invention is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some technical features thereof, as long as such modifications or replacements do not cause the essence of corresponding technical solutions to depart from the spirit and scope of the technical solutions of the embodiments of the present invention. 

What is claimed is:
 1. A notification method for a channel quality indicator (CQI), the method comprising: learning, by a user equipment (UE), a first CQI index according to an acquired first CQI table; and sending, by the UE, the first CQI index to a base station for determining a first modulation and coding scheme (MCS) index according to the first CQI index; wherein the first CQI table comprises: (a) entries in which modulation schemes are higher than 64 quadrature amplitude modulation (QAM); (b) at least one entry in which a modulation scheme is quadrature phase shift keying (QPSK) in a second CQI table, wherein modulation schemes in entries in the second CQI table comprise only QPSK, 16 QAM, and 64 QAM; and (c) at least one entry in which a modulation scheme is 16 QAM in the second CQI table; wherein the at least one entry in which the modulation scheme is QPSK comprises a combination taken from among multiple combinations in the second CQI table except a first combination that is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, wherein N is equal to
 3. 2. The method according to claim 1, wherein the at least one entry in which the modulation scheme is QPSK in the second CQI table comprises: some entries in which modulation schemes are QPSK in the second CQI table, wherein CQI indices corresponding to the some entries are at equal intervals.
 3. The method according to claim 1, wherein the first CQI table further comprises at least one entry in which a modulation scheme is 64 QAM in the second CQI table.
 4. The method according to claim 3, wherein the at least one entry in which the modulation scheme is 64 QAM comprises: some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.
 5. The method according to claim 1, wherein a spectrum efficiency in an entry that is corresponding to a minimum CQI index and of the entries in which the modulation schemes are higher than 64 QAM in the first CQI table is equal to a spectrum efficiency in an entry that is corresponding to a maximum CQI index and of all entries in which modulation schemes are 64 QAM in the second CQI table.
 6. A notification method for a modulation and coding scheme (MCS), the method comprising: receiving, by a base station, a first channel quality indicator (CQI) index sent by user equipment (UE), wherein the first CQI index is determined by the UE according to an acquired first CQI table; determining, by the base station, a first MCS index according to the acquired first CQI table, an acquired first MCS table, and the received first CQI index; and sending, by the base station, the determined first MCS index to the UE; wherein the first CQI table comprises: (a) entries in which modulation scheme are higher than 64 quadrature amplitude modulation (QAM); and (b) at least one entry in which a modulation scheme is quadrature phase shift keying (QPSK) in a second CQI table, wherein modulation schemes in the second CQI table comprise only QPSK, 16 QAM, and 64 QAM; and (c) at least one entry in which a modulation scheme is 16 QAM in the second CQI table; wherein the at least one entry in which the modulation scheme is QPSK comprises a combination taken from among multiple combinations in the second CQI table except a first combination that is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, wherein N is equal to 3; and the first MCS table comprises: (a) entries in which modulation schemes are higher than 64 QAM; and (b) at least one entry in which a modulation scheme is QPSK in a second MCS table, and (c) at least one entry in which a modulation scheme is 16 QAM in the second MCS table; wherein the at least one entry in which the modulation scheme is QPSK comprises a combination taken from among multiple combinations in the second MCS table except a second combination that is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, wherein K is equal to
 4. 7. The method according to claim 6, wherein the determining a first MCS index according to the acquired first CQI table, an acquired first MCS table, and the received first CQI index comprises: determining a first TBS index and the first MCS index according to an acquired first PRB quantity, the acquired first CQI table, the acquired first MCS table, and the received first CQI index, wherein: the first PRB quantity is a PRB quantity allocated by a base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient; a first TBS table comprises at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, wherein the first TBS table is a TBS table corresponding to the first MCS table; and a value range of a TBS index in the first TBS table is 0 to B, wherein B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table comprises at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.
 8. The method according to claim 7, wherein the determining a first TBS index according to an acquired first PRB quantity, the acquired first CQI table, the acquired first MCS table, and the received first CQI index comprises: determining, according to the first CQI table and the received first CQI index, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index; learning, according to the first PRB quantity and the first spectrum efficiency, a first transport block size transmitted to the UE; and obtaining, according to the first TBS table, the first TBS index that corresponds to the first transport block size and the first PRB quantity in the first TBS table.
 9. The method according to claim 6, wherein the at least one entry in which the modulation scheme is QPSK in the second MCS table comprises: some entries in which modulation schemes are QPSK in the second MCS table, wherein MCS indices corresponding to the some entries are at equal intervals.
 10. The method according to claim 6, wherein the first MCS table further comprises: at least one entry in which a modulation scheme is 64 QAM in the second MCS table.
 11. The method according to claim 10, wherein the at least one entry in which the modulation scheme is 64 QAM in the second MCS table comprises: some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table.
 12. A notification apparatus for a channel quality indicator (CQI) comprising: a processor configured to acquire a first CQI table; the processor configured to learn a first CQI index according to the first CQI table; and a transmitter configured to send the first CQI index learned by the processor to a base station for determining a first modulation and coding scheme (MCS) index according to the first CQI index; wherein the first CQI table acquired by the processor comprises: (a) entries in which modulation schemes are higher than 64 quadrature amplitude modulation (QAM); and (b) at least one entry in which a modulation scheme is quadrature phase shift keying (QPSK) in a second CQI table, wherein modulation schemes in entries in the second CQI table comprise only QPSK, 16 QAM, and 64 QAM; and (c) at least one entry in which a modulation scheme is 16 QAM in the second CQI table; wherein the at least one entry in which the modulation scheme is QPSK comprises a combination taken from among multiple combinations in the second CQI table except a first combination that is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, wherein N is equal to
 3. 13. The apparatus according to claim 12, wherein the at least one entry in which the modulation scheme is QPSK in the second CQI table and that is comprised in the first CQI table acquired by the processor comprises: some entries in which modulation schemes are QPSK in the second CQI table, wherein CQI indices corresponding to the some entries are at equal intervals.
 14. The apparatus according to claim 12, wherein the first CQI table acquired by the processor further comprises: at least one entry in which a modulation scheme is 64 QAM in the second CQI table.
 15. The apparatus according to claim 14, wherein the at least one entry in which the modulation scheme is 64 QAM in the first CQI table acquired by the processor comprises: some entries in which modulation schemes are 64 QAM in the second CQI table, and at least one entry, except an entry corresponding to a maximum CQI index, of all entries in which modulation schemes are 64 QAM in the second CQI table.
 16. A notification apparatus for a modulation and coding scheme (MCS) comprising: a processor configured to acquire a first channel quality indicator (CQI) table and a first MCS table; a receiver configured to receive a first CQI index sent by user equipment (UE), wherein the first CQI index is determined by the UE according to the first CQI table; the processor configured to determine a first MCS index according to the first CQI table, the first MCS table, and the first CQI index received by the receiver; and a transmitter configured to send the determined first MCS index to the UE; wherein the first CQI table acquired by the processor comprises: (a) entries in which modulation schemes are higher than 64 QAM; and (b) at least one entry in which a modulation scheme is QPSK in a second CQI table, wherein modulation schemes in the second CQI table comprise only QPSK, 16 QAM, and 64 QAM; and (c) at least one entry in which a modulation scheme is 16 QAM in the second CQI table; wherein the at least one entry in which the modulation scheme is QPSK comprises a combination taken from among multiple combinations in the second CQI table except a first combination that is N entries with consecutive maximum CQI indices corresponding to QPSK in the second CQI table, wherein N is equal to 3; and the first MCS table acquired by the processor comprises: (a) entries in which modulation schemes are higher than 64 QAM; and (b) at least one entry in which a modulation scheme is QPSK in a second MCS table, wherein modulation schemes in the second MCS table comprise only QPSK, 16 QAM, and 64 QAM; and (c) at least one entry in which a modulation scheme is 16 QAM in the second CQI table; wherein the at least one entry in which the modulation scheme is QPSK comprises a combination taken from among multiple combinations in the second MCS table except a second combination that is K entries with consecutive maximum MCS indices corresponding to QPSK in the second MCS table, wherein K is equal to 4; and/or at least one entry in which a modulation scheme is 16 QAM in the second MCS table.
 17. The apparatus according to claim 16, wherein the processor is configured to: determine a first TBS index and the first MCS index according to an acquired first PRB quantity, the first CQI table, the first MCS table, and the received first CQI index, wherein: the first PRB quantity is a PRB quantity allocated by a base station to the UE, or the first PRB quantity is a maximum integer less than or equal to a product of a PRB quantity allocated to the UE and a specific coefficient; a first TBS table comprises at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity, wherein the first TBS table is a TBS table corresponding to the first MCS table; and a value range of a TBS index in the first TBS table is 0 to A, wherein A is a positive integer less than or equal to 26, or a value range of a TBS index in the first TBS table is 0 to B, wherein B is a positive integer greater than or equal to 26; a transport block size corresponding to a TBS index whose value range is 0 to 26 in the first TBS table is the same as a transport block size corresponding to a TBS index whose value range is 0 to 26 in a second TBS table; a value range of a TBS index in the second TBS table is 0 to 26; and the second TBS table comprises at least one PRB quantity corresponding to each TBS index and a transport block size corresponding to each PRB quantity.
 18. The apparatus according to claim 17, wherein the processor specifically configured to: determine, according to the first CQI table and the first CQI index received by the receiver, a first modulation scheme and a first spectrum efficiency that correspond to the received first CQI index; and learn, according to the acquired first PRB quantity and the first spectrum efficiency, a first transport block size transmitted to the UE; and obtain, according to the first TBS table, the first TBS index that corresponds to the first transport block size and the first PRB quantity in the first TBS table.
 19. The apparatus according to claim 16 wherein the at least one entry in which the modulation scheme is QPSK in the second MCS table in the first MCS table acquired by the processor comprises: some entries in which modulation schemes are QPSK in the second MCS table, wherein MCS indices corresponding to the some entries are at equal intervals.
 20. The apparatus according to claim 16, wherein the first MCS table acquired by the processor further comprises: at least one entry in which a modulation scheme is 64 QAM in the second MCS table.
 21. The apparatus according to claim 20, wherein the at least one entry in which the modulation scheme is 64 QAM in the second MCS table in the first CQI table acquired by the processor comprises: all entries in which modulation schemes are 64 QAM in the second MCS table; or some entries in which modulation schemes are 64 QAM in the second MCS table, and at least one entry, except an entry with a minimum MCS index, of all entries in which modulation schemes are 64 QAM in the second MCS table. 